rowid,run.accession,experiment.accession,sample.accession,study.accession,bioproject,study.title,study.alias,study.type,study.abstract,study.attributes,study.PMIDs,sample.description,sample.title,sample.alias,sample.centername,sample.attributes,GEOsample.title,GEOsample.dataprocessing,GEOsample.source,GEOsample.treatmentprotocol,GEOsample.extractprotocol,GEOsample.growthprotocol,GEOsample.characteristics,GEOsample.accession,experiment.title,experiment.alias,experiment.library_name,experiment.design_description,experiment.library_construction_protocol,experiment.attributes,experiment.library_strategy,experiment.library_source,experiment.library_selection,experiment.library_layout,experiment.platform,experiment.instrument_model,experiment.spot_descriptor,experiment.study_ref,run.title,run.attributes,run.filename,run.semantic_name,run.total_bases,run.total_spots,run.alias,run.read_lengths,run.base_counts,run.r1_length,run.r2_length,run.r3_length,run.r4_length,run.Acount,run.Ccount,run.Gcount,run.Tcount,run.Ncount,run.experiment,run.pool_member,submission.accession,submission.srasource,submission.bioprojectsource,seqdetective.n_mates,seqdetective.mapping_rate.mate1,seqdetective.mapping_rate.mate2,seqdetective.nofeature_rate.mate1,seqdetective.nofeature_rate.mate2,seqdetective.sparsity.mate1,seqdetective.sparsity.mate2,seqdetective.pos_strand_rate.mate1,seqdetective.pos_strand_rate.mate2,seqdetective.readlen.mate1,seqdetective.readlen.mate2,seqdetective.judgement.mate1,seqdetective.judgement.mate2,seqdetective.judgement.reason,platform_family,instrument_generation,read_bias,selection_class,prep_kit,sc_or_bulk,tech_class,technology,tech_variant,submission.bioprojectsource.country,earliest_date,devstage_curation,devstage_curation_coarse,tissue_curation,tissue_curation_coarse
9717,ERR3842002,ERX3854564,ERS4268611,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 4Ei,SAMEA6504165,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:05:06Z|ENA LAST UPDATE:2020 01 27T16:04:35Z|External Id:SAMEA6504165|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:05:06Z|INSDC last update:2020 01 27T16:04:35Z|INSDC status:public|Submitter Id:Shield 4Ei|common name:zebrafish|sample name:Shield 4Ei|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 17:26:02:557 2,Shield 4Ei LSU,OTHER,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,10915827408.0,143629308.0,ena RUN Computational Biology Unit 27 01 2020 17:26:02:557 2,0:76,A:3900515347;C:2409375725;G:3041696977;T:1564127293;N:112066,76,,,,3900515347,2409375725,3041696977,1564127293,112066,ERX3854564,ERS4268611,ERA2359340,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.64398,,0.40944,,0.98817,,0.59337,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9718,ERR3842001,ERX3854563,ERS4268611,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 4Ei,SAMEA6504165,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:05:06Z|ENA LAST UPDATE:2020 01 27T16:04:35Z|External Id:SAMEA6504165|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:05:06Z|INSDC last update:2020 01 27T16:04:35Z|INSDC status:public|Submitter Id:Shield 4Ei|common name:zebrafish|sample name:Shield 4Ei|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 17:26:02:557 1,Shield 4Ei SSU,OTHER,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,7154041880.0,94132130.0,ena RUN Computational Biology Unit 27 01 2020 17:26:02:557 1,0:76,A:2939474250;C:1489083073;G:1922522149;T:802890185;N:72223,76,,,,2939474250,1489083073,1922522149,802890185,72223,ERX3854563,ERS4268611,ERA2359340,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.4369,,0.25417,,0.9867,,0.60047,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9719,ERR3842000,ERX3854562,ERS4268611,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 4Ei,SAMEA6504165,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:05:06Z|ENA LAST UPDATE:2020 01 27T16:04:35Z|External Id:SAMEA6504165|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:05:06Z|INSDC last update:2020 01 27T16:04:35Z|INSDC status:public|Submitter Id:Shield 4Ei|common name:zebrafish|sample name:Shield 4Ei|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 16:24:36:406 10,Shield 4Ei,OTHER,RNA Seq,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,1435748376.0,18891426.0,ena RUN Computational Biology Unit 27 01 2020 16:24:36:406 10,0:76,A:489056518;C:372290023;G:393663734;T:180723629;N:14472,76,,,,489056518,372290023,393663734,180723629,14472,ERX3854562,ERS4268611,ERA2359305,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.11942,,0.03394,,0.98971,,0.62271,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9720,ERR3841999,ERX3854561,ERS3556006,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 3,SAMEA5752547,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752547|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:10|common name:zebrafish|dev stage:Shield|sample name:10|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 16:24:36:406 9,Shield 3,OTHER,RNA Seq,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,1168482976.0,15374776.0,ena RUN Computational Biology Unit 27 01 2020 16:24:36:406 9,0:76,A:516070340;C:238363428;G:268806793;T:145231087;N:11328,76,,,,516070340,238363428,268806793,145231087,11328,ERX3854561,ERS3556006,ERA2359305,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.22586,,0.10275,,0.97281,,0.47683,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9721,ERR3841998,ERX3854560,ERS3556007,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 4150NT,SAMEA5752548,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752548|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:11|common name:zebrafish|dev stage:Shield|sample name:11|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 16:24:36:406 8,Shield 150NT,OTHER,RNA Seq,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,1188343980.0,15636105.0,ena RUN Computational Biology Unit 27 01 2020 16:24:36:406 8,0:76,A:580658556;C:223116826;G:260847322;T:123709681;N:11595,76,,,,580658556,223116826,260847322,123709681,11595,ERX3854560,ERS3556007,ERA2359305,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.27037,,0.13972,,0.97392,,0.39459,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9722,ERR3841997,ERX3854559,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 16:24:36:406 7,Shield 1,OTHER,RNA Seq,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,1278891444.0,16827519.0,ena RUN Computational Biology Unit 27 01 2020 16:24:36:406 7,0:76,A:571738369;C:256385478;G:295145281;T:155610082;N:12234,76,,,,571738369,256385478,295145281,155610082,12234,ERX3854559,ERS3556004,ERA2359305,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.23116,,0.11137,,0.97932,,0.45978,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9723,ERR3841996,ERX3854558,ERS3556001,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Sphere 3,SAMEA5752542,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752542|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:5|common name:zebrafish|dev stage:Sphere|sample name:5|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 16:24:36:406 6,Sphere 3,OTHER,RNA Seq,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,1439954368.0,18946768.0,ena RUN Computational Biology Unit 27 01 2020 16:24:36:406 6,0:76,A:669362698;C:280496524;G:316727778;T:173353505;N:13863,76,,,,669362698,280496524,316727778,173353505,13863,ERX3854558,ERS3556001,ERA2359305,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.26155,,0.12068,,0.96915,,0.45719,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Blastula,Embryo,Undetermined,Embryo Imprecise
9724,ERR3841995,ERX3854557,ERS3556000,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Sphere 2,SAMEA5752541,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752541|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:4|common name:zebrafish|dev stage:Sphere|sample name:4|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 16:24:36:406 5,Sphere 2,OTHER,RNA Seq,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,1592272200.0,20950950.0,ena RUN Computational Biology Unit 27 01 2020 16:24:36:406 5,0:76,A:757507948;C:308394094;G:342142775;T:184211881;N:15502,76,,,,757507948,308394094,342142775,184211881,15502,ERX3854557,ERS3556000,ERA2359305,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.22483,,0.10923,,0.97646,,0.49458,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Blastula,Embryo,Undetermined,Embryo Imprecise
9725,ERR3841994,ERX3854556,ERS3555999,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Sphere 1,SAMEA5752540,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752540|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:3|common name:zebrafish|dev stage:Sphere|sample name:3|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 16:24:36:406 4,Sphere 1,OTHER,RNA Seq,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,1332363676.0,17531101.0,ena RUN Computational Biology Unit 27 01 2020 16:24:36:406 4,0:76,A:529354355;C:299445923;G:318745973;T:184804260;N:13165,76,,,,529354355,299445923,318745973,184804260,13165,ERX3854556,ERS3555999,ERA2359305,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.21197,,0.0829,,0.98196,,0.55753,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Blastula,Embryo,Undetermined,Embryo Imprecise
9726,ERR3841993,ERX3854555,ERS3555998,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 2,SAMEA5752539,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752539|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:2|common name:zebrafish|dev stage:64 cell|sample name:2|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 16:24:36:406 3,64 cell 3,OTHER,RNA Seq,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,1579307816.0,20780366.0,ena RUN Computational Biology Unit 27 01 2020 16:24:36:406 3,0:76,A:589876602;C:380048242;G:392473318;T:216893826;N:15828,76,,,,589876602,380048242,392473318,216893826,15828,ERX3854555,ERS3555998,ERA2359305,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.15411,,0.04564,,0.97883,,0.55376,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9727,ERR3841992,ERX3854554,ERS3556003,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 4Ei 10,SAMEA5752544,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752544|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:7|common name:zebrafish|dev stage:64 cell|sample name:7|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 16:24:36:406 2,64 cell 4Ei,OTHER,RNA Seq,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,1213585480.0,15968230.0,ena RUN Computational Biology Unit 27 01 2020 16:24:36:406 2,0:76,A:548456563;C:244465528;G:271963808;T:148687764;N:11817,76,,,,548456563,244465528,271963808,148687764,11817,ERX3854554,ERS3556003,ERA2359305,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.21973,,0.10926,,0.97419,,0.44348,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9728,ERR3841991,ERX3854553,ERS3555997,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 1,SAMEA5752538,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752538|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:1|common name:zebrafish|dev stage:64 cell|sample name:1|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 27 01 2020 16:24:36:405 1,64 cell 1,OTHER,RNA Seq,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2020 02 14,,,1494930944.0,19670144.0,ena RUN Computational Biology Unit 27 01 2020 16:24:36:406 1,0:76,A:543017836;C:366974203;G:367027373;T:217896401;N:15131,76,,,,543017836,366974203,367027373,217896401,15131,ERX3854553,ERS3555997,ERA2359305,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.2544,,0.08957,,0.96568,,0.55681,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9729,ERR3489881,ERX3511296,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 33,Shield 1 F20,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,975578636.0,12836561.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 33,0:76,A:398325549;C:237563934;G:230721299;T:108957698;N:10156,76,,,,398325549,237563934,230721299,108957698,10156,ERX3511296,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.33102,,0.19766,,0.99918,,0.12812,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9730,ERR3489880,ERX3511295,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 32,Shield 1 F19,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,931166668.0,12252193.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 32,0:76,A:271081669;C:253947035;G:272354427;T:133774815;N:8722,76,,,,271081669,253947035,272354427,133774815,8722,ERX3511295,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.15598,,0.10707,,0.99902,,0.47314,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9731,ERR3489879,ERX3511294,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 31,Shield 1 F18,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,1506513268.0,19822543.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 31,0:76,A:493273515;C:456544968;G:391677033;T:165002559;N:15193,76,,,,493273515,456544968,391677033,165002559,15193,ERX3511294,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.01562,,0.0053,,0.99908,,0.8127,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9732,ERR3489878,ERX3511293,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 30,Shield 1 F17,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,1259456496.0,16571796.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 30,0:76,A:471473123;C:333726472;G:302016190;T:152228002;N:12709,76,,,,471473123,333726472,302016190,152228002,12709,ERX3511293,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.18339,,0.12544,,0.99928,,0.22368,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9733,ERR3489877,ERX3511292,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 29,Shield 1 F16,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,1364615872.0,17955472.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 29,0:76,A:539462776;C:341141880;G:314571683;T:169426048;N:13485,76,,,,539462776,341141880,314571683,169426048,13485,ERX3511292,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.11663,,0.07319,,0.99939,,0.25377,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9734,ERR3489876,ERX3511291,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 28,Shield 1 F15,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,952605888.0,12534288.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 28,0:76,A:414133320;C:219437277;G:207418049;T:111607418;N:9824,76,,,,414133320,219437277,207418049,111607418,9824,ERX3511291,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.17603,,0.10972,,0.99935,,0.13311,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9735,ERR3489875,ERX3511290,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 27,Shield 1 F14,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,870952628.0,11459903.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 27,0:76,A:357710338;C:221475453;G:191231014;T:100526675;N:9148,76,,,,357710338,221475453,191231014,100526675,9148,ERX3511290,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.1248,,0.06422,,0.99896,,0.34819,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9736,ERR3489874,ERX3511289,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 26,Shield 1 F13,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,981672620.0,12916745.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 26,0:76,A:434153198;C:223317075;G:198260771;T:125932145;N:9431,76,,,,434153198,223317075,198260771,125932145,9431,ERX3511289,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.44603,,0.25602,,0.99874,,0.18074,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9737,ERR3489873,ERX3511288,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 25,Shield 1 F12,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,1304618128.0,17166028.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 25,0:76,A:651341516;C:270458496;G:243929520;T:138874830;N:13766,76,,,,651341516,270458496,243929520,138874830,13766,ERX3511288,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.64293,,0.38159,,0.99886,,0.07313,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9738,ERR3489872,ERX3511287,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 24,Shield 1 F10,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,1336115948.0,17580473.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 24,0:76,A:608634206;C:295943144;G:286494431;T:145029697;N:14470,76,,,,608634206,295943144,286494431,145029697,14470,ERX3511287,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.68758,,0.47517,,0.99898,,0.02301,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9739,ERR3489871,ERX3511286,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 23,Shield 1 F9,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,1434402492.0,18873717.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 23,0:76,A:658705664;C:297967081;G:295595736;T:182118632;N:15379,76,,,,658705664,297967081,295595736,182118632,15379,ERX3511286,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.74246,,0.44235,,0.99701,,0.03112,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9740,ERR3489870,ERX3511285,ERS3556007,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 4150NT,SAMEA5752548,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752548|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:11|common name:zebrafish|dev stage:Shield|sample name:11|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 22,Shield 4150NT LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 24,,,24063208094.0,159358994.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 22,0:151,A:7153064588;C:5242791119;G:8513736630;T:3152547276;N:1068481,151,,,,7153064588,5242791119,8513736630,3152547276,1068481,ERX3511285,ERS3556007,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.81267,,0.27138,,0.99868,,0.91938,,151,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9741,ERR3489869,ERX3511284,ERS3556007,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 4150NT,SAMEA5752548,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752548|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:11|common name:zebrafish|dev stage:Shield|sample name:11|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 21,Shield 4150NT SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 24,,,14987998619.0,99258269.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 21,0:151,A:4578051806;C:2616328922;G:5914185813;T:1878780090;N:651988,151,,,,4578051806,2616328922,5914185813,1878780090,651988,ERX3511284,ERS3556007,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.77096,,0.5278,,0.99833,,0.42635,,151,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9742,ERR3489868,ERX3511283,ERS3556003,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 4Ei 10,SAMEA5752544,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752544|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:7|common name:zebrafish|dev stage:64 cell|sample name:7|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 20,64 cell 4Ei 10 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,5928054796.0,78000721.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 20,0:76,A:2109854905;C:1377083508;G:1616166285;T:824889630;N:60468,76,,,,2109854905,1377083508,1616166285,824889630,60468,ERX3511283,ERS3556003,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.61525,,0.45233,,0.99379,,0.57373,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9743,ERR3489867,ERX3511282,ERS3556003,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 4Ei 10,SAMEA5752544,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752544|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:7|common name:zebrafish|dev stage:64 cell|sample name:7|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 19,64 cell 4Ei 10 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,9772604780.0,128586905.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 19,0:76,A:3901301079;C:2223067879;G:2553338016;T:1094797648;N:100158,76,,,,3901301079,2223067879,2553338016,1094797648,100158,ERX3511282,ERS3556003,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.52103,,0.25046,,0.9861,,0.64575,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9744,ERR3489866,ERX3511281,ERS3556002,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 4Ei 0.1,SAMEA5752543,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752543|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:6|common name:zebrafish|dev stage:64 cell|sample name:6|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 18,64 cell 4Ei 0.1 LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 09 26,,,6730725680.0,88562180.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 18,0:76,A:3805722011;C:1188715051;G:1382258076;T:353814168;N:216374,76,,,,3805722011,1188715051,1382258076,353814168,216374,ERX3511281,ERS3556002,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.61922,,0.37217,,0.99527,,0.29148,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9745,ERR3489865,ERX3511280,ERS3556002,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 4Ei 0.1,SAMEA5752543,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752543|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:6|common name:zebrafish|dev stage:64 cell|sample name:6|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 17,64 cell 4Ei 0.1 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 09 26,,,10616304872.0,139688222.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 17,0:76,A:4717003484;C:2600725234;G:2586105174;T:712124440;N:346540,76,,,,4717003484,2600725234,2586105174,712124440,346540,ERX3511280,ERS3556002,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.30908,,0.08252,,0.94683,,0.69548,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9746,ERR3489864,ERX3511279,ERS3556006,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 3,SAMEA5752547,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752547|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:10|common name:zebrafish|dev stage:Shield|sample name:10|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 16,Shield 3 LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,11777220072.0,154963422.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 16,0:76,A:3368038444;C:3190496935;G:3529701152;T:1688766119;N:217422,76,,,,3368038444,3190496935,3529701152,1688766119,217422,ERX3511279,ERS3556006,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.70681,,0.18846,,0.99332,,0.71978,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9747,ERR3489863,ERX3511278,ERS3556006,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 3,SAMEA5752547,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752547|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:10|common name:zebrafish|dev stage:Shield|sample name:10|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 15,Shield 3 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,7920419952.0,104216052.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 15,0:76,A:2990167185;C:1767708808;G:2104830363;T:1057568560;N:145036,76,,,,2990167185,1767708808,2104830363,1057568560,145036,ERX3511278,ERS3556006,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.5052,,0.30841,,0.99129,,0.60948,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9748,ERR3489862,ERX3511277,ERS3556005,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 2,SAMEA5752546,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752546|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:9|common name:zebrafish|dev stage:Shield|sample name:9|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 14,Shield 2 LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,9775297004.0,128622329.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 14,0:76,A:4750565405;C:2540992255;G:1698817649;T:784832634;N:89061,76,,,,4750565405,2540992255,1698817649,784832634,89061,ERX3511277,ERS3556005,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.74003,,0.5616,,0.99855,,0.03607,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9749,ERR3489861,ERX3511276,ERS3556005,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 2,SAMEA5752546,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752546|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:9|common name:zebrafish|dev stage:Shield|sample name:9|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 13,Shield 2 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,8210103300.0,108027675.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 13,0:76,A:3300825043;C:2576709678;G:1707115198;T:625376255;N:77126,76,,,,3300825043,2576709678,1707115198,625376255,77126,ERX3511276,ERS3556005,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.2787,,0.17583,,0.99752,,0.50171,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9750,ERR3489860,ERX3511275,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 12,Shield 1 LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,2437679936.0,32074736.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 12,0:76,A:764355184;C:710492003;G:664031460;T:298777374;N:23915,76,,,,764355184,710492003,664031460,298777374,23915,ERX3511275,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.0406,,0.02417,,0.99908,,0.61299,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9751,ERR3489859,ERX3511274,ERS3556004,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Shield 1,SAMEA5752545,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752545|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:8|common name:zebrafish|dev stage:Shield|sample name:8|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 11,Shield 1 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,3157243376.0,41542676.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 11,0:76,A:1443205052;C:715251024;G:633421305;T:365333650;N:32345,76,,,,1443205052,715251024,633421305,365333650,32345,ERX3511274,ERS3556004,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.47643,,0.27944,,0.99896,,0.11464,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Gastrula,Embryo,Undetermined,Embryo Imprecise
9752,ERR3489858,ERX3511273,ERS3556001,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Sphere 3,SAMEA5752542,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752542|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:5|common name:zebrafish|dev stage:Sphere|sample name:5|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 10,Sphere 3 LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,2740392724.0,36057799.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 10,0:76,A:1790452280;C:354001675;G:431182140;T:164697730;N:58899,76,,,,1790452280,354001675,431182140,164697730,58899,ERX3511273,ERS3556001,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.87154,,0.5323,,0.99793,,0.02983,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Blastula,Embryo,Undetermined,Embryo Imprecise
9753,ERR3489857,ERX3511272,ERS3556001,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Sphere 3,SAMEA5752542,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752542|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:5|common name:zebrafish|dev stage:Sphere|sample name:5|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 9,Sphere 3 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,6277242192.0,82595292.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 9,0:76,A:3129446012;C:1311888416;G:1369035262;T:466745503;N:126999,76,,,,3129446012,1311888416,1369035262,466745503,126999,ERX3511272,ERS3556001,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.65637,,0.35975,,0.9936,,0.24734,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Blastula,Embryo,Undetermined,Embryo Imprecise
9754,ERR3489856,ERX3511271,ERS3556000,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Sphere 2,SAMEA5752541,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752541|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:4|common name:zebrafish|dev stage:Sphere|sample name:4|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:424 8,Sphere 2 LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 24,,,6679993476.0,87894651.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 8,0:76,A:3113787833;C:1255798935;G:1750515950;T:559763997;N:126761,76,,,,3113787833,1255798935,1750515950,559763997,126761,ERX3511271,ERS3556000,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.66287,,0.41208,,0.99602,,0.17083,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Blastula,Embryo,Undetermined,Embryo Imprecise
9755,ERR3489855,ERX3511270,ERS3556000,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Sphere 2,SAMEA5752541,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752541|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:4|common name:zebrafish|dev stage:Sphere|sample name:4|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:423 7,Sphere 2 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,13238731764.0,174193839.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:424 7,0:76,A:7630016769;C:1835321568;G:2775223283;T:997916159;N:253985,76,,,,7630016769,1835321568,2775223283,997916159,253985,ERX3511270,ERS3556000,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.77269,,0.45994,,0.99683,,0.04249,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Blastula,Embryo,Undetermined,Embryo Imprecise
9756,ERR3489854,ERX3511269,ERS3555999,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Sphere 1,SAMEA5752540,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752540|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:3|common name:zebrafish|dev stage:Sphere|sample name:3|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:423 6,Sphere 1 LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 24,,,3311799332.0,43576307.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:423 6,0:76,A:1182325939;C:888677953;G:922571204;T:318159754;N:64482,76,,,,1182325939,888677953,922571204,318159754,64482,ERX3511269,ERS3555999,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.57505,,0.24459,,0.99582,,0.43365,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Blastula,Embryo,Undetermined,Embryo Imprecise
9757,ERR3489853,ERX3511268,ERS3555999,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,Sphere 1,SAMEA5752540,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752540|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:3|common name:zebrafish|dev stage:Sphere|sample name:3|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:423 5,Sphere 1 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,7403181508.0,97410283.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:423 5,0:76,A:4338227974;C:1233250165;G:1372229712;T:459322295;N:151362,76,,,,4338227974,1233250165,1372229712,459322295,151362,ERX3511268,ERS3555999,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.765,,0.44747,,0.99515,,0.12467,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Blastula,Embryo,Undetermined,Embryo Imprecise
9758,ERR3489852,ERX3511267,ERS3555998,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 2,SAMEA5752539,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752539|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:2|common name:zebrafish|dev stage:64 cell|sample name:2|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:423 4,64 cell 2 LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,11722578884.0,154244459.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:423 4,0:76,A:8175036829;C:1396062240;G:1882846539;T:268587131;N:46145,76,,,,8175036829,1396062240,1882846539,268587131,46145,ERX3511267,ERS3555998,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.81133,,0.41331,,0.99823,,0.03453,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9759,ERR3489851,ERX3511266,ERS3555998,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 2,SAMEA5752539,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752539|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:2|common name:zebrafish|dev stage:64 cell|sample name:2|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:423 3,64 cell 2 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,9525478088.0,125335238.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:423 3,0:76,A:4813606784;C:2048902072;G:2140220088;T:522714000;N:35144,76,,,,4813606784,2048902072,2140220088,522714000,35144,ERX3511266,ERS3555998,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.59747,,0.26784,,0.996,,0.21193,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9760,ERR3489850,ERX3511265,ERS3555997,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 1,SAMEA5752538,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752538|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:1|common name:zebrafish|dev stage:64 cell|sample name:1|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:423 2,64 cell 1 LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,,,8544157652.0,112423127.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:423 2,0:76,A:2633354802;C:2582123846;G:2505786164;T:822713754;N:179086,76,,,,2633354802,2582123846,2505786164,822713754,179086,ERX3511265,ERS3555997,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.34707,,0.02129,,0.99797,,0.62478,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9761,ERR3489849,ERX3511264,ERS3555997,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 1,SAMEA5752538,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752538|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:1|common name:zebrafish|dev stage:64 cell|sample name:1|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 22 08 2019 11:57:43:423 1,64 cell 1 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 08 22,run7_64_cell_SSU_12_13_14.fastq.gz,fastq,10139466432.0,133414032.0,ena RUN Computational Biology Unit 22 08 2019 11:57:43:423 1,0:76 1:0,A:4628193785;C:2494821868;G:2485640988;T:530605907;N:203884,76,0,,,4628193785,2494821868,2485640988,530605907,203884,ERX3511264,ERS3555997,ERA2100634,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.06893,,0.02559,,0.99766,,0.90567,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9762,ERR3413870,ERX3437516,ERS3555997,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 1,SAMEA5752538,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752538|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:1|common name:zebrafish|dev stage:64 cell|sample name:1|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 03 07 2019 14:45:09:705 2,64 cell 1 LSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,8544157652.0,112423127.0,ena RUN Computational Biology Unit 03 07 2019 14:45:09:705 2,0:76,A:2633354802;C:2582123846;G:2505786164;T:822713754;N:179086,76,,,,2633354802,2582123846,2505786164,822713754,179086,ERX3437516,ERS3555997,ERA2028987,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.34696,,0.02086,,0.99795,,0.66261,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9763,ERR3413869,ERX3437515,ERS3555997,ERP116106,PRJEB33323,Deconstructing the individual steps of vertebrate translation initiation,ena-STUDY-Computational Biology Unit-03-07-2019-10:11:34:314-422,Other,In eukaryotes the number of ribosomes synthesizing a given protein depends on how many are recruited to its mRNA their success in navigating its five prime untranslated region UTR and whether they recognize its start codon. Initiation of translation is a rate limiting step in protein synthesis and key to gene expression control 1 but despite this centrality it remains poorly understood 2 3. Here we introduce ribosome complex profiling RCP seq to capture the transcriptome wide occupancy of scanning initiating elongating and terminating ribosome complexes in a higher eukaryote. We track scanning and elongating ribosomes across all five prime UTRs in zebrafish which enable us to assess the individual regulatory contributions from the three stages of initiation: ribosome recruitment scanning of the five prime UTR and recognition of the start codon. Our data sheds light on small subunit recruitment to mRNAs presenting evidence for the threading model and demonstrates that sequence features regulate this recruitment. We estimate the processivity of scanning ribosomes as they traverse the five prime UTR and show that the repressive effects of upstream open reading frames depend on the efficiency of both translation initiation and termination. Finally we determine the optimal initiation contexts by directly estimating the conversion of scanning to elongating ribosomes and demonstrate specific regulation of translation initiation at the endoplasmic reticulum. Our results open for the possibility of deconvoluting translation initiation into separate stages and provides the first view of global occupancy of ribosomal small subunits in a vertebrate.,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,64 cell 1,SAMEA5752538,Computational Biology Unit,ENA FIRST PUBLIC:2020 03 27T17:04:59Z|ENA LAST UPDATE:2019 07 03T10:01:14Z|External Id:SAMEA5752538|INSDC center name:Computational Biology Unit|INSDC first public:2020 03 27T17:04:59Z|INSDC last update:2019 07 03T10:01:14Z|INSDC status:public|Submitter Id:1|common name:zebrafish|dev stage:64 cell|sample name:1|scientific name:Danio rerio,,,,,,,,,NextSeq 500 sequencing,ena EXPERIMENT Computational Biology Unit 03 07 2019 14:45:09:705 1,64 cell 1 SSU,None,RCP seq,,OTHER,TRANSCRIPTOMIC,other,SINGLE,ILLUMINA,NextSeq 500,,ERP116106,NextSeq 500 sequencing,ENA FIRST PUBLIC:2020 03 27|ENA LAST UPDATE:2019 07 03,,,10139466432.0,133414032.0,ena RUN Computational Biology Unit 03 07 2019 14:45:09:705 1,0:76,A:4628193785;C:2494821868;G:2485640988;T:530605907;N:203884,76,,,,4628193785,2494821868,2485640988,530605907,203884,ERX3437515,ERS3555997,ERA2028987,Computational Biology Unit|European Nucleotide Archive,Computational Biology Unit,1,0.06884,,0.02526,,0.99762,,0.89856,,76,,B,,usable mapping rate,illumina,nextseq,unknown,other,unknown,bulk,unknown,unknown,,Unknown,2019-07-03,Cleavage,Embryo,Undetermined,Embryo Imprecise
9919,ERR5167510,ERX4972431,ERS5593364,ERP122761,PRJEB39265,RNA dynamics during zebrafish development,ena-STUDY-CENTER FOR GENOMIC REGULATION (CRG)-06-07-2020-15:41:43:771-1183,Other,RNA dynamics during early zebrafish development,ENA FIRST PUBLIC:2022 07 05|ENA LAST UPDATE:2022 07 05,,,cDNA WT 2hpf rep1,JD T20 PDPN191089,,ENA FIRST PUBLIC:2022 07 05T12:06:34Z|organism:Danio rerio|ENA LAST UPDATE:2022 07 05T12:06:34Z|scientific name:Danio rerio|common name:zebrafish|ENA FIRST PUBLIC:2022 07 05|ENA LAST UPDATE:2022 07 05,,,,,,,,,PromethION sequencing,ena EXPERIMENT CENTER FOR GENOMIC REGULATION CRG 21 01 2021 22:16:50:154 1,unspecified,1,,,RNA-Seq,TRANSCRIPTOMIC,Oligo-dT,SINGLE,OXFORD_NANOPORE,PromethION,,ERP122761,PromethION sequencing,ENA FIRST PUBLIC:2022 07 05|ENA LAST UPDATE:2022 07 05,,,,,ena RUN CENTER FOR GENOMIC REGULATION CRG 21 01 2021 22:16:50:154 1,,,,,,,,,,,,ERX4972431,,ERA3319053,CENTER FOR GENOMIC REGULATION (CRG)|European Nucleotide Archive,CENTER FOR GENOMIC REGULATION (CRG),,,,,,,,,,,,,,,ont,ont,unknown,poly_a,unknown,bulk,unknown,unknown,,Spain,2022-07-05,Cleavage,Embryo,Undetermined,Embryo Imprecise
10212,ERR6511331,ERX6138167,ERS7264190,ERP131213,PRJEB46978,Nano3P seq: transcriptome wide analysis of gene expression and tail dynamics using end capture nanopore sequencing,ena-STUDY-CENTER FOR GENOMIC REGULATION (CRG)-12-08-2021-14:48:52:906-1159,Other,Nano3P seq is a simple and robust method to accurately estimate transcript levels tail lengths and tail nucleotide composition information in full length individual reads with minimal library preparation biases both in the coding and non coding transcriptome.,ENA FIRST PUBLIC:2023 12 28|ENA LAST UPDATE:2023 12 28,,Zebrafish Nano3P seq of PolyA selected sample biological replicate 1 including 4 hpf RNA,Zebrafish PolyA 4 hpf,SAMEA9541420,CENTER FOR GENOMIC REGULATION (CRG),ENA FIRST PUBLIC:2023 12 28T01:07:23Z|ENA LAST UPDATE:2023 12 28T01:07:23Z|External Id:SAMEA9541420|INSDC center name:CENTER FOR GENOMIC REGULATION CRG|INSDC first public:2023 12 28T01:07:23Z|INSDC last update:2023 12 28T01:07:23Z|INSDC status:public|Submitter Id:Zebrafish PolyA 4 hpf|common name:zebrafish|sample name:Zebrafish PolyA 4 hpf|scientific name:Danio rerio,,,,,,,,,MinION sequencing,ena EXPERIMENT CENTER FOR GENOMIC REGULATION CRG 17 08 2021 13:09:55:665 5,cDNA8523612,Nano3P seq,Nano3P seq,,OTHER,TRANSCRIPTOMIC,unspecified,SINGLE,OXFORD_NANOPORE,MinION,,ERP131213,MinION sequencing,ENA FIRST PUBLIC:2023 12 28|ENA LAST UPDATE:2023 12 28,zebrafish_polya_4hpf.tar.gz,nanopore,330562220.0,233101.0,ena RUN CENTER FOR GENOMIC REGULATION CRG 17 08 2021 13:09:55:665 5,0:1418.11,A:86572446;C:74232962;G:69203462;T:100553350;N:0,1418,,,,86572446,74232962,69203462,100553350,0,ERX6138167,ERS7264190,ERA5757997,CENTER FOR GENOMIC REGULATION (CRG)|European Nucleotide Archive,CENTER FOR GENOMIC REGULATION (CRG),1,0.0,,0.0,,1.0,,,,1536,,T,,long read,ont,ont,full_length,poly_a,unknown,bulk,unknown,unknown,,Spain,2023-12-28,Blastula,Embryo,Undetermined,Embryo Imprecise
10213,ERR6511329,ERX6138165,ERS7264188,ERP131213,PRJEB46978,Nano3P seq: transcriptome wide analysis of gene expression and tail dynamics using end capture nanopore sequencing,ena-STUDY-CENTER FOR GENOMIC REGULATION (CRG)-12-08-2021-14:48:52:906-1159,Other,Nano3P seq is a simple and robust method to accurately estimate transcript levels tail lengths and tail nucleotide composition information in full length individual reads with minimal library preparation biases both in the coding and non coding transcriptome.,ENA FIRST PUBLIC:2023 12 28|ENA LAST UPDATE:2023 12 28,,Zebrafish Nano3P seq of Ribodepleted sample biological replicate 1 including 2 hpf 4 hpf 6 hpf RNAs,Zebrafish Ribodep Rep1,SAMEA9541418,CENTER FOR GENOMIC REGULATION (CRG),ENA FIRST PUBLIC:2023 12 28T01:07:23Z|ENA LAST UPDATE:2023 12 28T01:07:23Z|External Id:SAMEA9541418|INSDC center name:CENTER FOR GENOMIC REGULATION CRG|INSDC first public:2023 12 28T01:07:23Z|INSDC last update:2023 12 28T01:07:23Z|INSDC status:public|Submitter Id:Zebrafish Ribodep Rep1|common name:zebrafish|sample name:Zebrafish Ribodep Rep1|scientific name:Danio rerio,,,,,,,,,MinION sequencing,ena EXPERIMENT CENTER FOR GENOMIC REGULATION CRG 17 08 2021 13:09:55:665 3,cDNA786327,Nano3P seq,Nano3P seq,,OTHER,TRANSCRIPTOMIC,unspecified,SINGLE,OXFORD_NANOPORE,MinION,,ERP131213,MinION sequencing,ENA FIRST PUBLIC:2023 12 28|ENA LAST UPDATE:2023 12 28,zebrafish_ribodep_rep1.tar.gz,nanopore,1745399583.0,1644167.0,ena RUN CENTER FOR GENOMIC REGULATION CRG 17 08 2021 13:09:55:665 3,0:1061.57,A:449704009;C:421915878;G:378879857;T:494899839;N:0,1061,,,,449704009,421915878,378879857,494899839,0,ERX6138165,ERS7264188,ERA5757997,CENTER FOR GENOMIC REGULATION (CRG)|European Nucleotide Archive,CENTER FOR GENOMIC REGULATION (CRG),1,0.01112,,0.0,,0.99997,,1.0,,546,,T,,long read,ont,ont,full_length,rrna_depletion,unknown,bulk,unknown,unknown,,Spain,2023-12-28,Multi-stage,Embryo,Undetermined,Embryo Imprecise
10214,ERR6617900,ERX6244443,ERS7291130,ERP131213,PRJEB46978,Nano3P seq: transcriptome wide analysis of gene expression and tail dynamics using end capture nanopore sequencing,ena-STUDY-CENTER FOR GENOMIC REGULATION (CRG)-12-08-2021-14:48:52:906-1159,Other,Nano3P seq is a simple and robust method to accurately estimate transcript levels tail lengths and tail nucleotide composition information in full length individual reads with minimal library preparation biases both in the coding and non coding transcriptome.,ENA FIRST PUBLIC:2023 12 28|ENA LAST UPDATE:2023 12 28,,PolyA selected dRNA sequenced zebrafish 4hpf RNA,Zebrafish 4hpf dRNA,SAMEA9568396,CENTER FOR GENOMIC REGULATION (CRG),ENA FIRST PUBLIC:2023 12 28T01:07:30Z|ENA LAST UPDATE:2023 12 28T01:07:30Z|External Id:SAMEA9568396|INSDC center name:CENTER FOR GENOMIC REGULATION CRG|INSDC first public:2023 12 28T01:07:30Z|INSDC last update:2023 12 28T01:07:30Z|INSDC status:public|Submitter Id:Zebrafish 4hpf dRNA1|common name:zebrafish|sample name:Zebrafish 4hpf dRNA1|scientific name:Danio rerio,,,,,,,,,MinION sequencing,ena EXPERIMENT CENTER FOR GENOMIC REGULATION CRG 03 09 2021 14:33:13:450 1,dRNA Zebrafish,Direct RNA Sequencing,Direct RNA Sequencing,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,OXFORD_NANOPORE,MinION,,ERP131213,MinION sequencing,ENA FIRST PUBLIC:2023 12 28|ENA LAST UPDATE:2023 12 28,Zebrafish_4hpf_dRNA.fast5.tar.gz,nanopore,772304625.0,897768.0,ena RUN CENTER FOR GENOMIC REGULATION CRG 03 09 2021 14:33:13:450 1,0:860.25,A:224977035;C:165273397;G:156659356;T:225394837;N:0,860,,,,224977035,165273397,156659356,225394837,0,ERX6244443,ERS7291130,ERA5995143,CENTER FOR GENOMIC REGULATION (CRG)|European Nucleotide Archive,CENTER FOR GENOMIC REGULATION (CRG),1,0.5,,0.0,,0.99997,,1.0,,962,,T,,long read,ont,ont,full_length,poly_a,unknown,bulk,unknown,unknown,,Spain,2023-12-28,Blastula,Embryo,Undetermined,Embryo Imprecise
10215,ERR6511330,ERX6138166,ERS7264189,ERP131213,PRJEB46978,Nano3P seq: transcriptome wide analysis of gene expression and tail dynamics using end capture nanopore sequencing,ena-STUDY-CENTER FOR GENOMIC REGULATION (CRG)-12-08-2021-14:48:52:906-1159,Other,Nano3P seq is a simple and robust method to accurately estimate transcript levels tail lengths and tail nucleotide composition information in full length individual reads with minimal library preparation biases both in the coding and non coding transcriptome.,ENA FIRST PUBLIC:2023 12 28|ENA LAST UPDATE:2023 12 28,,Zebrafish Nano3P seq of Ribodepleted sample biological replicate 1 including 2 hpf 4 hpf 6 hpf RNAs,Zebrafish Ribodep Rep2,SAMEA9541419,CENTER FOR GENOMIC REGULATION (CRG),ENA FIRST PUBLIC:2023 12 28T01:07:23Z|ENA LAST UPDATE:2023 12 28T01:07:23Z|External Id:SAMEA9541419|INSDC center name:CENTER FOR GENOMIC REGULATION CRG|INSDC first public:2023 12 28T01:07:23Z|INSDC last update:2023 12 28T01:07:23Z|INSDC status:public|Submitter Id:Zebrafish Ribodep Rep2|common name:zebrafish|sample name:Zebrafish Ribodep Rep2|scientific name:Danio rerio,,,,,,,,,MinION sequencing,ena EXPERIMENT CENTER FOR GENOMIC REGULATION CRG 17 08 2021 13:09:55:665 4,cDNA123791,Nano3P seq,Nano3P seq,,OTHER,TRANSCRIPTOMIC,unspecified,SINGLE,OXFORD_NANOPORE,MinION,,ERP131213,MinION sequencing,ENA FIRST PUBLIC:2023 12 28|ENA LAST UPDATE:2023 12 28,zebrafish_ribodep_rep2.tar.gz,nanopore,2038398139.0,1955617.0,ena RUN CENTER FOR GENOMIC REGULATION CRG 17 08 2021 13:09:55:665 4,0:1042.33,A:518369802;C:477535545;G:441294056;T:601198736;N:0,1042,,,,518369802,477535545,441294056,601198736,0,ERX6138166,ERS7264189,ERA5757997,CENTER FOR GENOMIC REGULATION (CRG)|European Nucleotide Archive,CENTER FOR GENOMIC REGULATION (CRG),,,,,,,,,,,,,,,ont,ont,full_length,rrna_depletion,unknown,bulk,unknown,unknown,,Spain,2023-12-28,Multi-stage,Embryo,Undetermined,Embryo Imprecise
11042,ERR9839781,ERX9385638,ERS12199238,ERP138294,PRJEB53494,Nano3P seq: transcriptome wide analysis of gene expression and tail dynamics using end capture nanopore cDNA sequencing,94bf5509-4622-4d5f-b7c5-6a14bdfac340,Other,RNA polyadenylation plays a central role in RNA maturation fate and stability. In response to developmental cues polyA tail lengths can vary affecting the translation efficiency and stability of mRNAs. Here we develop Nanopore three prime end capture sequencing Nano3P seq a novel method that relies on nanopore cDNA sequencing to simultaneously quantify RNA abundance tail composition and tail length dynamics at per read resolution. By employing a template switching based sequencing protocol Nano3P seq can sequence any given RNA molecule from its three prime end regardless of its polyadenylation status without xxx need for PCR amplification or ligation of RNA adapters. We demonstrate that Nano3P seq captures a wide diversity of RNA biotypes providing quantitative estimates of RNA abundance and tail lengths in mRNA lncRNA sn/snoRNA scaRNA and rRNA molecules. We find that in addition to mRNA and lncRNA polyA tails can be identified in 16S mitochondrial rRNA in both mouse and zebrafish models. Moreover we show that mRNA tail lengths are dynamically regulated during vertebrate embryogenesis at an isoform specific level correlating with mRNA decay. Finally we identify non A bases within polyA tails of various lengths and reveal their distribution during vertebrate embryogenesis. Overall Nano3P seq is a simple and robust method for accurately estimating transcript levels tail lengths and tail composition heterogeneity in individual reads with minimal library preparation biases both in the coding and non coding transcriptome.,ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10,,Zebrafish Ribodepleted RNA 2hpf 4hpf 6hpf,Zebrafish Ribodepleted Rep3,SAMEA110100413,CENTER FOR GENOMIC REGULATION (CRG),ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10|External Id:SAMEA110100413|INSDC center alias:CENTER FOR GENOMIC REGULATION CRG|INSDC center name:CENTER FOR GENOMIC REGULATION CRG|INSDC first public:2022 10 10T00:20:53Z|INSDC last update:2022 10 10T00:20:53Z|INSDC status:public|Submitter Id:Zebrafish Ribodepleted Rep3|common name:zebrafish|sample name:Zebrafish Ribodepleted Rep3,,,,,,,,,MinION sequencing,ena EXPERIMENT TAB 13 06 2022 16:07:52:807 817,cDNA897892 ZFRDR3,1,,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,OXFORD_NANOPORE,MinION,,ERP138294,MinION sequencing,ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10,cDNA897892_ZFRDR3.tar.gz,nanopore,848659575.0,587586.0,ena RUN TAB 13 06 2022 16:07:52:808 818,0:1444.32,A:210205014;C:186527780;G:188214279;T:263712502;N:0,1444,,,,210205014,186527780,188214279,263712502,0,ERX9385638,ERS12199238,ERA15547404,CENTER FOR GENOMIC REGULATION (CRG)|European Nucleotide Archive,CENTER FOR GENOMIC REGULATION (CRG),,,,,,,,,,,,,,,ont,ont,3prime,poly_a,unknown,bulk,unknown,unknown,,Spain,2022-10-10,Multi-stage,Embryo,Undetermined,Embryo Imprecise
11043,ERR9839780,ERX9385637,ERS12199237,ERP138294,PRJEB53494,Nano3P seq: transcriptome wide analysis of gene expression and tail dynamics using end capture nanopore cDNA sequencing,94bf5509-4622-4d5f-b7c5-6a14bdfac340,Other,RNA polyadenylation plays a central role in RNA maturation fate and stability. In response to developmental cues polyA tail lengths can vary affecting the translation efficiency and stability of mRNAs. Here we develop Nanopore three prime end capture sequencing Nano3P seq a novel method that relies on nanopore cDNA sequencing to simultaneously quantify RNA abundance tail composition and tail length dynamics at per read resolution. By employing a template switching based sequencing protocol Nano3P seq can sequence any given RNA molecule from its three prime end regardless of its polyadenylation status without xxx need for PCR amplification or ligation of RNA adapters. We demonstrate that Nano3P seq captures a wide diversity of RNA biotypes providing quantitative estimates of RNA abundance and tail lengths in mRNA lncRNA sn/snoRNA scaRNA and rRNA molecules. We find that in addition to mRNA and lncRNA polyA tails can be identified in 16S mitochondrial rRNA in both mouse and zebrafish models. Moreover we show that mRNA tail lengths are dynamically regulated during vertebrate embryogenesis at an isoform specific level correlating with mRNA decay. Finally we identify non A bases within polyA tails of various lengths and reveal their distribution during vertebrate embryogenesis. Overall Nano3P seq is a simple and robust method for accurately estimating transcript levels tail lengths and tail composition heterogeneity in individual reads with minimal library preparation biases both in the coding and non coding transcriptome.,ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10,,Zebrafish Ribodepleted RNA 2hpf 4hpf 6hpf,Zebrafish Ribodepleted Rep2,SAMEA110100412,CENTER FOR GENOMIC REGULATION (CRG),ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10|External Id:SAMEA110100412|INSDC center alias:CENTER FOR GENOMIC REGULATION CRG|INSDC center name:CENTER FOR GENOMIC REGULATION CRG|INSDC first public:2022 10 10T00:20:53Z|INSDC last update:2022 10 10T00:20:53Z|INSDC status:public|Submitter Id:Zebrafish Ribodepleted Rep2|common name:zebrafish|sample name:Zebrafish Ribodepleted Rep2,,,,,,,,,MinION sequencing,ena EXPERIMENT TAB 13 06 2022 16:07:52:807 815,cDNA123791 ZFRDR2,1,,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,OXFORD_NANOPORE,MinION,,ERP138294,MinION sequencing,ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10,cDNA123791_ZFRDR2.tar.gz,nanopore,2229275175.0,1955617.0,ena RUN TAB 13 06 2022 16:07:52:807 816,0:1139.93,A:533543922;C:498938137;G:515833119;T:680959997;N:0,1139,,,,533543922,498938137,515833119,680959997,0,ERX9385637,ERS12199237,ERA15547404,CENTER FOR GENOMIC REGULATION (CRG)|European Nucleotide Archive,CENTER FOR GENOMIC REGULATION (CRG),,,,,,,,,,,,,,,ont,ont,3prime,poly_a,unknown,bulk,unknown,unknown,,Spain,2022-10-10,Multi-stage,Embryo,Undetermined,Embryo Imprecise
11044,ERR9839779,ERX9385636,ERS12199236,ERP138294,PRJEB53494,Nano3P seq: transcriptome wide analysis of gene expression and tail dynamics using end capture nanopore cDNA sequencing,94bf5509-4622-4d5f-b7c5-6a14bdfac340,Other,RNA polyadenylation plays a central role in RNA maturation fate and stability. In response to developmental cues polyA tail lengths can vary affecting the translation efficiency and stability of mRNAs. Here we develop Nanopore three prime end capture sequencing Nano3P seq a novel method that relies on nanopore cDNA sequencing to simultaneously quantify RNA abundance tail composition and tail length dynamics at per read resolution. By employing a template switching based sequencing protocol Nano3P seq can sequence any given RNA molecule from its three prime end regardless of its polyadenylation status without xxx need for PCR amplification or ligation of RNA adapters. We demonstrate that Nano3P seq captures a wide diversity of RNA biotypes providing quantitative estimates of RNA abundance and tail lengths in mRNA lncRNA sn/snoRNA scaRNA and rRNA molecules. We find that in addition to mRNA and lncRNA polyA tails can be identified in 16S mitochondrial rRNA in both mouse and zebrafish models. Moreover we show that mRNA tail lengths are dynamically regulated during vertebrate embryogenesis at an isoform specific level correlating with mRNA decay. Finally we identify non A bases within polyA tails of various lengths and reveal their distribution during vertebrate embryogenesis. Overall Nano3P seq is a simple and robust method for accurately estimating transcript levels tail lengths and tail composition heterogeneity in individual reads with minimal library preparation biases both in the coding and non coding transcriptome.,ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10,,Zebrafish Ribodepleted RNA 2hpf 4hpf 6hpf,Zebrafish Ribodepleted Rep1,SAMEA110100411,CENTER FOR GENOMIC REGULATION (CRG),ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10|External Id:SAMEA110100411|INSDC center alias:CENTER FOR GENOMIC REGULATION CRG|INSDC center name:CENTER FOR GENOMIC REGULATION CRG|INSDC first public:2022 10 10T00:20:53Z|INSDC last update:2022 10 10T00:20:53Z|INSDC status:public|Submitter Id:Zebrafish Ribodepleted Rep1|common name:zebrafish|sample name:Zebrafish Ribodepleted Rep1,,,,,,,,,MinION sequencing,ena EXPERIMENT TAB 13 06 2022 16:07:52:807 813,cDNA786327 ZFRDR1,1,,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,OXFORD_NANOPORE,MinION,,ERP138294,MinION sequencing,ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10,cDNA786327_ZFRDR1.tar.gz,nanopore,1900613556.0,1660167.0,ena RUN TAB 13 06 2022 16:07:52:807 814,0:1144.83,A:473050820;C:438054520;G:425169743;T:564338473;N:0,1144,,,,473050820,438054520,425169743,564338473,0,ERX9385636,ERS12199236,ERA15547404,CENTER FOR GENOMIC REGULATION (CRG)|European Nucleotide Archive,CENTER FOR GENOMIC REGULATION (CRG),,,,,,,,,,,,,,,ont,ont,3prime,poly_a,unknown,bulk,unknown,unknown,,Spain,2022-10-10,Multi-stage,Embryo,Undetermined,Embryo Imprecise
11045,ERR9839778,ERX9385635,ERS12199235,ERP138294,PRJEB53494,Nano3P seq: transcriptome wide analysis of gene expression and tail dynamics using end capture nanopore cDNA sequencing,94bf5509-4622-4d5f-b7c5-6a14bdfac340,Other,RNA polyadenylation plays a central role in RNA maturation fate and stability. In response to developmental cues polyA tail lengths can vary affecting the translation efficiency and stability of mRNAs. Here we develop Nanopore three prime end capture sequencing Nano3P seq a novel method that relies on nanopore cDNA sequencing to simultaneously quantify RNA abundance tail composition and tail length dynamics at per read resolution. By employing a template switching based sequencing protocol Nano3P seq can sequence any given RNA molecule from its three prime end regardless of its polyadenylation status without xxx need for PCR amplification or ligation of RNA adapters. We demonstrate that Nano3P seq captures a wide diversity of RNA biotypes providing quantitative estimates of RNA abundance and tail lengths in mRNA lncRNA sn/snoRNA scaRNA and rRNA molecules. We find that in addition to mRNA and lncRNA polyA tails can be identified in 16S mitochondrial rRNA in both mouse and zebrafish models. Moreover we show that mRNA tail lengths are dynamically regulated during vertebrate embryogenesis at an isoform specific level correlating with mRNA decay. Finally we identify non A bases within polyA tails of various lengths and reveal their distribution during vertebrate embryogenesis. Overall Nano3P seq is a simple and robust method for accurately estimating transcript levels tail lengths and tail composition heterogeneity in individual reads with minimal library preparation biases both in the coding and non coding transcriptome.,ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10,,Zebrafish PolyA Selected RNA 4hpf,Zebrafish pA selected,SAMEA110100410,CENTER FOR GENOMIC REGULATION (CRG),ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10|External Id:SAMEA110100410|INSDC center alias:CENTER FOR GENOMIC REGULATION CRG|INSDC center name:CENTER FOR GENOMIC REGULATION CRG|INSDC first public:2022 10 10T00:20:53Z|INSDC last update:2022 10 10T00:20:53Z|INSDC status:public|Submitter Id:Zebrafish pA selected|common name:zebrafish|sample name:Zebrafish pA selected,,,,,,,,,MinION sequencing,ena EXPERIMENT TAB 13 06 2022 16:07:52:807 811,cDNA852361 ZFPA4R1,1,,,RNA-Seq,TRANSCRIPTOMIC,other,SINGLE,OXFORD_NANOPORE,MinION,,ERP138294,MinION sequencing,ENA FIRST PUBLIC:2022 10 10|ENA LAST UPDATE:2022 10 10,cDNA852361_ZFPA4R1.tar.gz,nanopore,348224822.0,233101.0,ena RUN TAB 13 06 2022 16:07:52:807 812,0:1493.88,A:88963756;C:76104775;G:73909507;T:109246784;N:0,1493,,,,88963756,76104775,73909507,109246784,0,ERX9385635,ERS12199235,ERA15547404,CENTER FOR GENOMIC REGULATION (CRG)|European Nucleotide Archive,CENTER FOR GENOMIC REGULATION (CRG),1,0.34147,,0.26829,,0.99993,,0.16666,,1537,,T,,long read,ont,ont,3prime,poly_a,unknown,bulk,unknown,unknown,,Spain,2022-10-10,Blastula,Embryo,Undetermined,Embryo Imprecise
24546,ERR964671,ERX1041634,ERS792101,ERP011038,PRJEB9889,The Zebrafish transcriptome during early development,ena-STUDY-KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION-15-07-2015-15:13:51:747-22,Other,Zebrafish has emerged as a model organism to investigate vertebrate development and human genetic diseases. However currently zebrafish annotation is still ongoing and clearly not sufficed therefore providing opportunity for novel transcript finding. With the introduction of massive parallel sequencing whole transcriptome investigations became possible through assembling entire transcriptome from overlapped sequencing reads. In the study we were aiming to discover novel transcribed regions NTRs using data from RNA sequencing. We have developed an in house bioinformatics pipeline for NTR discovery. Using the pipeline we detected 165 putative NTRs which could involve in early zebrafish development and not annotated anywhere. Six randomly selected NTRs were successfully validated experimentally using RT PCR. These NTRs provided new candidates for zebrafish transcriptome studies and zebrafish genome annotation.,,,,KI BN JKE DRERIO RNASEQ,SAMEA3484816,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,ENA first public:2015 07 16|ENA last update:2015 07 15|External Id:SAMEA3484816|INSDC center alias:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC center name:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC first public:2015 07 16T15:54:30Z|INSDC last update:2015 07 15T15:02:15Z|INSDC status:public|Submitter Id:KI BN JKE DRERIO RNASEQ 2009 1cell|common name:zebrafish|dev stage:1cell|sample name:KI BN JKE DRERIO RNASEQ 2009 1cell|strain:Tuebingen,,,,,,,,,AB SOLiD System 3.0 sequencing,ena EXPERIMENT KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:872 5,unspecified,1,,,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ABI_SOLID,AB SOLiD System 3.0,,ERP011038,AB SOLiD System 3.0 sequencing,ENA FIRST PUBLIC:2015 07 16|ENA LAST UPDATE:2018 11 16,KI-BN-JKE-DRERIO-RNASEQ-20091014-1cell_F3.csfasta.gz KI-BN-JKE-DRERIO-RNASEQ-20091014-1cell_F3_QV.qual.gz,SOLiD_native SOLiD_native,2625510200.0,52510204.0,ena RUN KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:872 5,0:50,0:677149824;1:606769571;2:761187530;3:578170290;.:2232985,50,,,,,,,,,ERX1041634,ERS792101,ERA458495,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|European Nucleotide Archive,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,1,0.71662,,0.0994,,0.91644,,0.74578,,50,,B,,usable mapping rate,legacy,early,full_length,random_priming,unknown,bulk,unknown,unknown,,Sweden,2015-07-15,Zygote,Embryo,Undetermined,Embryo Imprecise
24547,ERR964670,ERX1041633,ERS792104,ERP011038,PRJEB9889,The Zebrafish transcriptome during early development,ena-STUDY-KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION-15-07-2015-15:13:51:747-22,Other,Zebrafish has emerged as a model organism to investigate vertebrate development and human genetic diseases. However currently zebrafish annotation is still ongoing and clearly not sufficed therefore providing opportunity for novel transcript finding. With the introduction of massive parallel sequencing whole transcriptome investigations became possible through assembling entire transcriptome from overlapped sequencing reads. In the study we were aiming to discover novel transcribed regions NTRs using data from RNA sequencing. We have developed an in house bioinformatics pipeline for NTR discovery. Using the pipeline we detected 165 putative NTRs which could involve in early zebrafish development and not annotated anywhere. Six randomly selected NTRs were successfully validated experimentally using RT PCR. These NTRs provided new candidates for zebrafish transcriptome studies and zebrafish genome annotation.,,,,KI BN JKE DRERIO RNASEQ,SAMEA3484819,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,ENA first public:2015 07 16|ENA last update:2015 07 15|External Id:SAMEA3484819|INSDC center alias:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC center name:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC first public:2015 07 16T15:54:30Z|INSDC last update:2015 07 15T15:02:15Z|INSDC status:public|Submitter Id:KI BN JKE DRERIO RNASEQ 2009 50epiboly|common name:zebrafish|dev stage:50% epiboly|sample name:KI BN JKE DRERIO RNASEQ 2009 50epiboly|strain:Tuebingen,,,,,,,,,AB SOLiD System 3.0 sequencing,ena EXPERIMENT KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:871 4,unspecified,1,,,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ABI_SOLID,AB SOLiD System 3.0,,ERP011038,AB SOLiD System 3.0 sequencing,ENA FIRST PUBLIC:2015 07 16|ENA LAST UPDATE:2018 11 16,KI-BN-JKE-DRERIO-RNASEQ-20090709-50epiboly_F3.csfasta.gz KI-BN-JKE-DRERIO-RNASEQ-20090709-50epiboly_F3_QV.qual.gz,SOLiD_native SOLiD_native,5325942150.0,106518843.0,ena RUN KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:871 4,0:50,0:1376469323;1:1227617853;2:1499234750;3:1210700143;.:11920081,50,,,,,,,,,ERX1041633,ERS792104,ERA458495,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|European Nucleotide Archive,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,1,0.7059,,0.10511,,0.91492,,0.75125,,50,,B,,usable mapping rate,legacy,early,full_length,random_priming,unknown,bulk,unknown,unknown,,Sweden,2015-07-15,Gastrula,Embryo,Undetermined,Embryo Imprecise
24548,ERR964669,ERX1041632,ERS792103,ERP011038,PRJEB9889,The Zebrafish transcriptome during early development,ena-STUDY-KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION-15-07-2015-15:13:51:747-22,Other,Zebrafish has emerged as a model organism to investigate vertebrate development and human genetic diseases. However currently zebrafish annotation is still ongoing and clearly not sufficed therefore providing opportunity for novel transcript finding. With the introduction of massive parallel sequencing whole transcriptome investigations became possible through assembling entire transcriptome from overlapped sequencing reads. In the study we were aiming to discover novel transcribed regions NTRs using data from RNA sequencing. We have developed an in house bioinformatics pipeline for NTR discovery. Using the pipeline we detected 165 putative NTRs which could involve in early zebrafish development and not annotated anywhere. Six randomly selected NTRs were successfully validated experimentally using RT PCR. These NTRs provided new candidates for zebrafish transcriptome studies and zebrafish genome annotation.,,,,KI BN JKE DRERIO RNASEQ,SAMEA3484818,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,ENA first public:2015 07 16|ENA last update:2015 07 15|External Id:SAMEA3484818|INSDC center alias:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC center name:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC first public:2015 07 16T15:54:30Z|INSDC last update:2015 07 15T15:02:15Z|INSDC status:public|Submitter Id:KI BN JKE DRERIO RNASEQ 2009 512cell|common name:zebrafish|dev stage:512 cell|sample name:KI BN JKE DRERIO RNASEQ 2009 512cell|strain:Tuebingen,,,,,,,,,AB SOLiD System 3.0 sequencing,ena EXPERIMENT KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:871 3,unspecified,1,,,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ABI_SOLID,AB SOLiD System 3.0,,ERP011038,AB SOLiD System 3.0 sequencing,ENA FIRST PUBLIC:2015 07 16|ENA LAST UPDATE:2018 11 16,KI-BN-JKE-DRERIO-RNASEQ-20090709-512cell_F3.csfasta.gz KI-BN-JKE-DRERIO-RNASEQ-20090709-512cell_F3_QV.qual.gz,SOLiD_native SOLiD_native,5452772750.0,109055455.0,ena RUN KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:871 3,0:50,0:1391108289;1:1312099760;2:1551659810;3:1179923010;.:17981881,50,,,,,,,,,ERX1041632,ERS792103,ERA458495,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|European Nucleotide Archive,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,1,0.73133,,0.07897,,0.88057,,0.63645,,50,,B,,usable mapping rate,legacy,early,full_length,random_priming,unknown,bulk,unknown,unknown,,Sweden,2015-07-15,Blastula,Embryo,Undetermined,Embryo Imprecise
24549,ERR964667,ERX1041630,ERS792101,ERP011038,PRJEB9889,The Zebrafish transcriptome during early development,ena-STUDY-KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION-15-07-2015-15:13:51:747-22,Other,Zebrafish has emerged as a model organism to investigate vertebrate development and human genetic diseases. However currently zebrafish annotation is still ongoing and clearly not sufficed therefore providing opportunity for novel transcript finding. With the introduction of massive parallel sequencing whole transcriptome investigations became possible through assembling entire transcriptome from overlapped sequencing reads. In the study we were aiming to discover novel transcribed regions NTRs using data from RNA sequencing. We have developed an in house bioinformatics pipeline for NTR discovery. Using the pipeline we detected 165 putative NTRs which could involve in early zebrafish development and not annotated anywhere. Six randomly selected NTRs were successfully validated experimentally using RT PCR. These NTRs provided new candidates for zebrafish transcriptome studies and zebrafish genome annotation.,,,,KI BN JKE DRERIO RNASEQ,SAMEA3484816,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,ENA first public:2015 07 16|ENA last update:2015 07 15|External Id:SAMEA3484816|INSDC center alias:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC center name:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC first public:2015 07 16T15:54:30Z|INSDC last update:2015 07 15T15:02:15Z|INSDC status:public|Submitter Id:KI BN JKE DRERIO RNASEQ 2009 1cell|common name:zebrafish|dev stage:1cell|sample name:KI BN JKE DRERIO RNASEQ 2009 1cell|strain:Tuebingen,,,,,,,,,AB SOLiD System 3.0 sequencing,ena EXPERIMENT KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:870 1,unspecified,1,,,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ABI_SOLID,AB SOLiD System 3.0,,ERP011038,AB SOLiD System 3.0 sequencing,ENA FIRST PUBLIC:2015 07 16|ENA LAST UPDATE:2018 11 16,KI-BN-JKE-DRERIO-RNASEQ-20090709-1cell_F3.csfasta.gz KI-BN-JKE-DRERIO-RNASEQ-20090709-1cell_F3_QV.qual.gz,SOLiD_native SOLiD_native,5717685400.0,114353708.0,ena RUN KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:870 1,0:50,0:1643444976;1:1261570333;2:1504304496;3:1282815913;.:25549682,50,,,,,,,,,ERX1041630,ERS792101,ERA458495,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|European Nucleotide Archive,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,1,0.72274,,0.11151,,0.92348,,0.71904,,50,,B,,usable mapping rate,legacy,early,full_length,random_priming,unknown,bulk,unknown,unknown,,Sweden,2015-07-15,Zygote,Embryo,Undetermined,Embryo Imprecise
24550,ERR964668,ERX1041631,ERS792102,ERP011038,PRJEB9889,The Zebrafish transcriptome during early development,ena-STUDY-KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION-15-07-2015-15:13:51:747-22,Other,Zebrafish has emerged as a model organism to investigate vertebrate development and human genetic diseases. However currently zebrafish annotation is still ongoing and clearly not sufficed therefore providing opportunity for novel transcript finding. With the introduction of massive parallel sequencing whole transcriptome investigations became possible through assembling entire transcriptome from overlapped sequencing reads. In the study we were aiming to discover novel transcribed regions NTRs using data from RNA sequencing. We have developed an in house bioinformatics pipeline for NTR discovery. Using the pipeline we detected 165 putative NTRs which could involve in early zebrafish development and not annotated anywhere. Six randomly selected NTRs were successfully validated experimentally using RT PCR. These NTRs provided new candidates for zebrafish transcriptome studies and zebrafish genome annotation.,,,,KI BN JKE DRERIO RNASEQ,SAMEA3484817,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,ENA first public:2015 07 16|ENA last update:2015 07 15|External Id:SAMEA3484817|INSDC center alias:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC center name:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC first public:2015 07 16T15:54:30Z|INSDC last update:2015 07 15T15:02:15Z|INSDC status:public|Submitter Id:KI BN JKE DRERIO RNASEQ 2009 16cell|common name:zebrafish|dev stage:16 cell|sample name:KI BN JKE DRERIO RNASEQ 2009 16cell|strain:Tuebingen,,,,,,,,,AB SOLiD System 3.0 sequencing,ena EXPERIMENT KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:870 2,unspecified,1,,,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ABI_SOLID,AB SOLiD System 3.0,,ERP011038,AB SOLiD System 3.0 sequencing,ENA FIRST PUBLIC:2015 07 16|ENA LAST UPDATE:2018 11 16,KI-BN-JKE-DRERIO-RNASEQ-20090709-16cell_F3.csfasta.gz KI-BN-JKE-DRERIO-RNASEQ-20090709-16cell_F3_QV.qual.gz,SOLiD_native SOLiD_native,5278508300.0,105570166.0,ena RUN KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:871 2,0:50,0:1410981717;1:1203936808;2:1415708111;3:1223403795;.:24477869,50,,,,,,,,,ERX1041631,ERS792102,ERA458495,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|European Nucleotide Archive,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,1,0.71371,,0.09346,,0.91539,,0.73015,,50,,B,,usable mapping rate,legacy,early,full_length,random_priming,unknown,bulk,unknown,unknown,,Sweden,2015-07-15,Cleavage,Embryo,Undetermined,Embryo Imprecise
24551,ERR964674,ERX1041637,ERS792104,ERP011038,PRJEB9889,The Zebrafish transcriptome during early development,ena-STUDY-KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION-15-07-2015-15:13:51:747-22,Other,Zebrafish has emerged as a model organism to investigate vertebrate development and human genetic diseases. However currently zebrafish annotation is still ongoing and clearly not sufficed therefore providing opportunity for novel transcript finding. With the introduction of massive parallel sequencing whole transcriptome investigations became possible through assembling entire transcriptome from overlapped sequencing reads. In the study we were aiming to discover novel transcribed regions NTRs using data from RNA sequencing. We have developed an in house bioinformatics pipeline for NTR discovery. Using the pipeline we detected 165 putative NTRs which could involve in early zebrafish development and not annotated anywhere. Six randomly selected NTRs were successfully validated experimentally using RT PCR. These NTRs provided new candidates for zebrafish transcriptome studies and zebrafish genome annotation.,,,,KI BN JKE DRERIO RNASEQ,SAMEA3484819,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,ENA first public:2015 07 16|ENA last update:2015 07 15|External Id:SAMEA3484819|INSDC center alias:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC center name:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC first public:2015 07 16T15:54:30Z|INSDC last update:2015 07 15T15:02:15Z|INSDC status:public|Submitter Id:KI BN JKE DRERIO RNASEQ 2009 50epiboly|common name:zebrafish|dev stage:50% epiboly|sample name:KI BN JKE DRERIO RNASEQ 2009 50epiboly|strain:Tuebingen,,,,,,,,,AB SOLiD System 3.0 sequencing,ena EXPERIMENT KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:873 8,unspecified,1,,,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ABI_SOLID,AB SOLiD System 3.0,,ERP011038,AB SOLiD System 3.0 sequencing,ENA FIRST PUBLIC:2015 07 16|ENA LAST UPDATE:2018 11 16,KI-BN-JKE-DRERIO-RNASEQ-20091014-50epiboly_F3.csfasta.gz KI-BN-JKE-DRERIO-RNASEQ-20091014-50epiboly_F3_QV.qual.gz,SOLiD_native SOLiD_native,2541596650.0,50831933.0,ena RUN KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:873 8,0:50,0:670988333;1:585266057;2:708634642;3:574052618;.:2655000,50,,,,,,,,,ERX1041637,ERS792104,ERA458495,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|European Nucleotide Archive,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,1,0.72135,,0.10529,,0.90997,,0.76049,,50,,B,,usable mapping rate,legacy,early,full_length,random_priming,unknown,bulk,unknown,unknown,,Sweden,2015-07-15,Gastrula,Embryo,Undetermined,Embryo Imprecise
24552,ERR964673,ERX1041636,ERS792103,ERP011038,PRJEB9889,The Zebrafish transcriptome during early development,ena-STUDY-KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION-15-07-2015-15:13:51:747-22,Other,Zebrafish has emerged as a model organism to investigate vertebrate development and human genetic diseases. However currently zebrafish annotation is still ongoing and clearly not sufficed therefore providing opportunity for novel transcript finding. With the introduction of massive parallel sequencing whole transcriptome investigations became possible through assembling entire transcriptome from overlapped sequencing reads. In the study we were aiming to discover novel transcribed regions NTRs using data from RNA sequencing. We have developed an in house bioinformatics pipeline for NTR discovery. Using the pipeline we detected 165 putative NTRs which could involve in early zebrafish development and not annotated anywhere. Six randomly selected NTRs were successfully validated experimentally using RT PCR. These NTRs provided new candidates for zebrafish transcriptome studies and zebrafish genome annotation.,,,,KI BN JKE DRERIO RNASEQ,SAMEA3484818,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,ENA first public:2015 07 16|ENA last update:2015 07 15|External Id:SAMEA3484818|INSDC center alias:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC center name:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC first public:2015 07 16T15:54:30Z|INSDC last update:2015 07 15T15:02:15Z|INSDC status:public|Submitter Id:KI BN JKE DRERIO RNASEQ 2009 512cell|common name:zebrafish|dev stage:512 cell|sample name:KI BN JKE DRERIO RNASEQ 2009 512cell|strain:Tuebingen,,,,,,,,,AB SOLiD System 3.0 sequencing,ena EXPERIMENT KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:872 7,unspecified,1,,,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ABI_SOLID,AB SOLiD System 3.0,,ERP011038,AB SOLiD System 3.0 sequencing,ENA FIRST PUBLIC:2015 07 16|ENA LAST UPDATE:2018 11 16,KI-BN-JKE-DRERIO-RNASEQ-20091014-512cell_F3.csfasta.gz KI-BN-JKE-DRERIO-RNASEQ-20091014-512cell_F3_QV.qual.gz,SOLiD_native SOLiD_native,2027760000.0,40555200.0,ena RUN KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:872 7,0:50,0:511413081;1:492642968;2:594959353;3:426692118;.:2052480,50,,,,,,,,,ERX1041636,ERS792103,ERA458495,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|European Nucleotide Archive,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,1,0.77106,,0.08154,,0.85675,,0.64875,,50,,B,,usable mapping rate,legacy,early,full_length,random_priming,unknown,bulk,unknown,unknown,,Sweden,2015-07-15,Blastula,Embryo,Undetermined,Embryo Imprecise
24553,ERR964672,ERX1041635,ERS792102,ERP011038,PRJEB9889,The Zebrafish transcriptome during early development,ena-STUDY-KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION-15-07-2015-15:13:51:747-22,Other,Zebrafish has emerged as a model organism to investigate vertebrate development and human genetic diseases. However currently zebrafish annotation is still ongoing and clearly not sufficed therefore providing opportunity for novel transcript finding. With the introduction of massive parallel sequencing whole transcriptome investigations became possible through assembling entire transcriptome from overlapped sequencing reads. In the study we were aiming to discover novel transcribed regions NTRs using data from RNA sequencing. We have developed an in house bioinformatics pipeline for NTR discovery. Using the pipeline we detected 165 putative NTRs which could involve in early zebrafish development and not annotated anywhere. Six randomly selected NTRs were successfully validated experimentally using RT PCR. These NTRs provided new candidates for zebrafish transcriptome studies and zebrafish genome annotation.,,,,KI BN JKE DRERIO RNASEQ,SAMEA3484817,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,ENA first public:2015 07 16|ENA last update:2015 07 15|External Id:SAMEA3484817|INSDC center alias:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC center name:KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|INSDC first public:2015 07 16T15:54:30Z|INSDC last update:2015 07 15T15:02:15Z|INSDC status:public|Submitter Id:KI BN JKE DRERIO RNASEQ 2009 16cell|common name:zebrafish|dev stage:16 cell|sample name:KI BN JKE DRERIO RNASEQ 2009 16cell|strain:Tuebingen,,,,,,,,,AB SOLiD System 3.0 sequencing,ena EXPERIMENT KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:872 6,unspecified,1,,,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ABI_SOLID,AB SOLiD System 3.0,,ERP011038,AB SOLiD System 3.0 sequencing,ENA FIRST PUBLIC:2015 07 16|ENA LAST UPDATE:2018 11 16,KI-BN-JKE-DRERIO-RNASEQ-20091014-16cell_F3.csfasta.gz KI-BN-JKE-DRERIO-RNASEQ-20091014-16cell_F3_QV.qual.gz,SOLiD_native SOLiD_native,2719433200.0,54388664.0,ena RUN KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION 15 07 2015 15:13:47:872 6,0:50,0:699731678;1:628745158;2:754903505;3:633574679;.:2478180,50,,,,,,,,,ERX1041635,ERS792102,ERA458495,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION|European Nucleotide Archive,KAROLINSKA INSTITUTET DEPARTMENT OF BIOSCIENCES AND NUTRITION,1,0.73214,,0.09566,,0.90836,,0.74043,,50,,B,,usable mapping rate,legacy,early,full_length,random_priming,unknown,bulk,unknown,unknown,,Sweden,2015-07-15,Cleavage,Embryo,Undetermined,Embryo Imprecise
29719,SRR27485664,SRX23156885,SRS20107306,SRP482074,PRJNA1061456,tRAM seq: tRNA abundance and modification analysis during zebrafish embryo development,PRJNA1061456,Other,,,,,,eggs R3,,strain:TLAB fish|isolate:NA|breed:cross of zebrafish AB and the natural variant TL Tupfel Longfin|cultivar:NA|ecotype:NA|dev stage:activated eggs|collection date:2022|geo loc name:Austria|sex:mixed|tissue:activated eggs|replicate:3|BioSampleModel:Model organism or animal,,,,,,,,,mRNA seq of zebrafish: eggs rep4,EV06009,EV06009,RNA was extracted with Trizol and processed with QuantSeq three prime mRNA Seq Library Prep Kit FWD for Illumina Lexogen. 500 ng total RNA per sample. Single indexed QuantSeq libraries were QC checked on a Bioanalyzer 2100 Agilent using a High Sensitivity DNA Kit for correct insert size and quantified using Qubit dsDNA HS Assay Invitrogen. Pooled libraries were sequenced on a NextSeq500 instrument Illumina in 1x75bp single end sequencing mode,,,RNA-Seq,TRANSCRIPTOMIC,Oligo-dT,SINGLE,ILLUMINA,NextSeq 500,,SRP482074,,,EV06009.R1.fastq.gz,fastq,809138488.0,10734286.0,EV06009.R1.fastq.gz,0:75.38,A:236901398;C:156814193;G:179647937;T:235732894;N:42066,75,,,,236901398,156814193,179647937,235732894,42066,SRX23156885,SRS20107306,SRA1783314,Medical University of Vienna|Cell and Developmental Biology,Medical University of Vienna,1,0.92159,,0.07516,,0.837,,0.7566,,69,,B,,usable mapping rate,illumina,nextseq,3prime,poly_a,lexogen,bulk,unknown,unknown,,Austria,2024-01-11,Undetermined,Embryo,Undetermined,Embryo Imprecise
29730,SRR27485675,SRX23156874,SRS20107295,SRP482074,PRJNA1061456,tRAM seq: tRNA abundance and modification analysis during zebrafish embryo development,PRJNA1061456,Other,,,,,,eggs R2,,strain:TLAB fish|isolate:NA|breed:cross of zebrafish AB and the natural variant TL Tupfel Longfin|cultivar:NA|ecotype:NA|dev stage:activated eggs|collection date:2022|geo loc name:Austria|sex:mixed|tissue:activated eggs|replicate:2|BioSampleModel:Model organism or animal,,,,,,,,,mRNA seq of zebrafish: eggs rep4,EV06002,EV06002,RNA was extracted with Trizol and processed with QuantSeq three prime mRNA Seq Library Prep Kit FWD for Illumina Lexogen. 500 ng total RNA per sample. Single indexed QuantSeq libraries were QC checked on a Bioanalyzer 2100 Agilent using a High Sensitivity DNA Kit for correct insert size and quantified using Qubit dsDNA HS Assay Invitrogen. Pooled libraries were sequenced on a NextSeq500 instrument Illumina in 1x75bp single end sequencing mode,,,RNA-Seq,TRANSCRIPTOMIC,Oligo-dT,SINGLE,ILLUMINA,NextSeq 500,,SRP482074,,,EV06002.R1.fastq.gz,fastq,632849068.0,8404028.0,EV06002.R1.fastq.gz,0:75.30,A:194183801;C:123105421;G:139266843;T:176255048;N:37955,75,,,,194183801,123105421,139266843,176255048,37955,SRX23156874,SRS20107295,SRA1783314,Medical University of Vienna|Cell and Developmental Biology,Medical University of Vienna,1,0.88896,,0.09385,,0.81864,,0.73385,,75,,B,,usable mapping rate,illumina,nextseq,3prime,poly_a,lexogen,bulk,unknown,unknown,,Austria,2024-01-11,Undetermined,Embryo,Undetermined,Embryo Imprecise
29737,SRR27477297,SRX23148650,SRS20099368,SRP482074,PRJNA1061456,tRAM seq: tRNA abundance and modification analysis during zebrafish embryo development,PRJNA1061456,Other,,,,,,eggs R4,,strain:TLAB fish|isolate:NA|breed:cross of zebrafish AB and the natural variant TL Tupfel Longfin|cultivar:NA|ecotype:NA|dev stage:activated eggs|collection date:2022|geo loc name:Austria|sex:mixed|tissue:activated eggs|replicate:4|BioSampleModel:Model organism or animal,,,,,,,,,mRNA seq of zebrafish: eggs rep4,EV09002,EV09002,RNA was extracted with Trizol and processed with QuantSeq three prime mRNA Seq Library Prep Kit FWD for Illumina Lexogen. 500 ng total RNA per sample. Single indexed QuantSeq libraries were QC checked on a Bioanalyzer 2100 Agilent using a High Sensitivity DNA Kit for correct insert size and quantified using Qubit dsDNA HS Assay Invitrogen. Pooled libraries were sequenced on a NextSeq500 instrument Illumina in 1x75bp single end sequencing mode,,,RNA-Seq,TRANSCRIPTOMIC,Oligo-dT,SINGLE,ILLUMINA,NextSeq 500,,SRP482074,,,EV09002.R1.fastq.gz,fastq,546999929.0,7270092.0,EV09002.R1.fastq.gz,0:75.24,A:165415993;C:110874896;G:124384517;T:146294099;N:30424,75,,,,165415993,110874896,124384517,146294099,30424,SRX23148650,SRS20099368,SRA1782413,Medical University of Vienna|Cell and Developmental Biology,Medical University of Vienna,1,0.9065,,0.11883,,0.82231,,0.74466,,75,,B,,usable mapping rate,illumina,nextseq,3prime,poly_a,lexogen,bulk,unknown,unknown,,Austria,2024-01-10,Undetermined,Embryo,Undetermined,Embryo Imprecise
29745,SRR27467678,SRX23139228,SRS20090268,SRP482074,PRJNA1061456,tRAM seq: tRNA abundance and modification analysis during zebrafish embryo development,PRJNA1061456,Other,,,,,,eggs mock R2,,strain:TLAB fish|isolate:NA|breed:cross of zebrafish AB and the natural variant TL Tupfel Longfin|cultivar:NA|ecotype:NA|dev stage:activated eggs|collection date:2022|geo loc name:Austria|sex:mixed|tissue:activated eggs|treatment:mock|BioSampleModel:Model organism or animal,,,,,,,,,tRAM seq of zebrafish: eggs mock rep2,EV04001,EV04001,RNA was extracted with Trizol tRNA isolated by size selection on denaturing polyacrylamide gel range 50 150 nt. The RNA was end repaired by alkaline deacylation and T4 PNK treatment three prime adapter ligated with T4 RNA ligase 2 reverse transcribed with TGIRT. The cDNA was circularized with CircLigase and amplified with KAPA HiFi polymerase using NEB Next indexed primers.,,,OTHER,TRANSCRIPTOMIC,size fractionation,SINGLE,ILLUMINA,NextSeq 500,,SRP482074,,,EV04001.R1.fastq.gz,fastq,970037880.0,6928842.0,EV04001.R1.fastq.gz,0:140,A:258735538;C:237798398;G:268588390;T:204871983;N:43571,140,,,,258735538,237798398,268588390,204871983,43571,SRX23139228,SRS20090268,SRA1781872,Medical University of Vienna|Cell and Developmental Biology,Medical University of Vienna,1,0.0,,0.0,,1.0,,,,140,,T,,under 1.2% mapping rate,illumina,nextseq,unknown,size_fractionation,nebnext,bulk,unknown,unknown,,Austria,2024-01-09,Undetermined,Embryo,Undetermined,Embryo Imprecise
29761,SRR27437481,SRX23109816,SRS20064569,SRP482074,PRJNA1061456,tRAM seq: tRNA abundance and modification analysis during zebrafish embryo development,PRJNA1061456,Other,,,,,,eggs BS R3,,strain:TLAB fish|breed:cross of zebrafish AB and the natural variant TL Tupfel Longfin|dev stage:activated eggs|collection date:2022|geo loc name:Austria|sex:mixed|tissue:activated eggs|treatment:BS|BioSampleModel:Model organism or animal,,,,,,,,,tRAM seq of zebrafish: eggs BS rep3,EV07003,EV07003,RNA was extracted with Trizol tRNA isolated by size selection on denaturing polyacrylamide gel range 50 150 nt. The RNA was end repaired by alkaline deacylation and T4 PNK treatment three prime adapter ligated with T4 RNA ligase 2 reverse transcribed with TGIRT. The cDNA was circularized with CircLigase and amplified with KAPA HiFi polymerase using NEB Next indexed primers.,,,OTHER,TRANSCRIPTOMIC,size fractionation,SINGLE,ILLUMINA,NextSeq 500,,SRP482074,,,EV07003.R1.fastq.gz,fastq,688960160.0,4921144.0,EV07003.R1.fastq.gz,0:140,A:187831021;C:119362814;G:195214528;T:186533242;N:18555,140,,,,187831021,119362814,195214528,186533242,18555,SRX23109816,SRS20064569,SRA1780298,Medical University of Vienna|Cell and Developmental Biology,Medical University of Vienna,1,0.0,,0.0,,1.0,,,,140,,T,,under 1.2% mapping rate,illumina,nextseq,unknown,size_fractionation,nebnext,bulk,unknown,unknown,,Austria,2024-01-06,Undetermined,Embryo,Undetermined,Embryo Imprecise
29762,SRR27437482,SRX23109815,SRS20064568,SRP482074,PRJNA1061456,tRAM seq: tRNA abundance and modification analysis during zebrafish embryo development,PRJNA1061456,Other,,,,,,eggs DM R3,,strain:TLAB fish|breed:cross of zebrafish AB and the natural variant TL Tupfel Longfin|dev stage:activated eggs|collection date:2022|geo loc name:Austria|sex:mixed|tissue:activated eggs|treatment:DM|BioSampleModel:Model organism or animal,,,,,,,,,tRAM seq of zebrafish: eggs DM rep3,EV07002,EV07002,RNA was extracted with Trizol tRNA isolated by size selection on denaturing polyacrylamide gel range 50 150 nt. The RNA was end repaired by alkaline deacylation and T4 PNK treatment three prime adapter ligated with T4 RNA ligase 2 reverse transcribed with TGIRT. The cDNA was circularized with CircLigase and amplified with KAPA HiFi polymerase using NEB Next indexed primers.,,,OTHER,TRANSCRIPTOMIC,size fractionation,SINGLE,ILLUMINA,NextSeq 500,,SRP482074,,,EV07002.R1.fastq.gz,fastq,520725380.0,3719467.0,EV07002.R1.fastq.gz,0:140,A:138972126;C:125739732;G:142785467;T:113214166;N:13889,140,,,,138972126,125739732,142785467,113214166,13889,SRX23109815,SRS20064568,SRA1780298,Medical University of Vienna|Cell and Developmental Biology,Medical University of Vienna,1,0.00014,,1e-05,,0.99969,,0.5,,140,,T,,under 1.2% mapping rate,illumina,nextseq,unknown,size_fractionation,nebnext,bulk,unknown,unknown,,Austria,2024-01-06,Undetermined,Embryo,Undetermined,Embryo Imprecise
29763,SRR27437483,SRX23109814,SRS20064570,SRP482074,PRJNA1061456,tRAM seq: tRNA abundance and modification analysis during zebrafish embryo development,PRJNA1061456,Other,,,,,,eggs mock R3,,strain:TLAB fish|breed:cross of zebrafish AB and the natural variant TL Tupfel Longfin|dev stage:activated eggs|collection date:2022|geo loc name:Austria|sex:mixed|tissue:activated eggs|treatment:mock|BioSampleModel:Model organism or animal,,,,,,,,,tRAM seq of zebrafish: eggs mock rep3,EV07001,EV07001,RNA was extracted with Trizol tRNA isolated by size selection on denaturing polyacrylamide gel range 50 150 nt. The RNA was end repaired by alkaline deacylation and T4 PNK treatment three prime adapter ligated with T4 RNA ligase 2 reverse transcribed with TGIRT. The cDNA was circularized with CircLigase and amplified with KAPA HiFi polymerase using NEB Next indexed primers.,,,OTHER,TRANSCRIPTOMIC,size fractionation,SINGLE,ILLUMINA,NextSeq 500,,SRP482074,,,EV07001.R1.fastq.gz,fastq,684538960.0,4889564.0,EV07001.R1.fastq.gz,0:140,A:178906891;C:169237174;G:192342342;T:144034095;N:18458,140,,,,178906891,169237174,192342342,144034095,18458,SRX23109814,SRS20064570,SRA1780298,Medical University of Vienna|Cell and Developmental Biology,Medical University of Vienna,1,0.0001,,1e-05,,0.99977,,0.76923,,140,,T,,under 1.2% mapping rate,illumina,nextseq,unknown,size_fractionation,nebnext,bulk,unknown,unknown,,Austria,2024-01-06,Undetermined,Embryo,Undetermined,Embryo Imprecise
29782,SRR27435867,SRX23108229,SRS20063067,SRP482074,PRJNA1061456,tRAM seq: tRNA abundance and modification analysis during zebrafish embryo development,PRJNA1061456,Other,,,,,,eggs BS R4,,strain:TLAB fish|isolate:NA|breed:cross of zebrafish AB and the natural variant TL Tupfel Longfin|cultivar:NA|ecotype:NA|dev stage:activated eggs|collection date:2022|geo loc name:Austria|sex:mixed|tissue:activated eggs|treatment:BS|BioSampleModel:Model organism or animal,,,,,,,,,tRAM seq of zebrafish: eggs BS rep4,EV08006,EV08006,RNA was extracted with Trizol tRNA isolated by size selection on denaturing polyacrylamide gel range 50 150 nt. The RNA was end repaired by alkaline deacylation and T4 PNK treatment three prime adapter ligated with T4 RNA ligase 2 reverse transcribed with TGIRT. The cDNA was circularized with CircLigase and amplified with KAPA HiFi polymerase using NEB Next indexed primers.,,,OTHER,TRANSCRIPTOMIC,size fractionation,SINGLE,ILLUMINA,NextSeq 500,,SRP482074,,,EV08006.R1.fastq.gz,fastq,501745580.0,3583897.0,EV08006.R1.fastq.gz,0:140,A:124242793;C:76040623;G:131428076;T:170000220;N:33868,140,,,,124242793,76040623,131428076,170000220,33868,SRX23108229,SRS20063067,SRA1780265,Medical University of Vienna|Cell and Developmental Biology,Medical University of Vienna,1,4e-05,,0.0,,0.99993,,0.66666,,140,,T,,under 1.2% mapping rate,illumina,nextseq,unknown,size_fractionation,nebnext,bulk,unknown,unknown,,Austria,2024-01-05,Undetermined,Embryo,Undetermined,Embryo Imprecise
29783,SRR27435868,SRX23108228,SRS20063063,SRP482074,PRJNA1061456,tRAM seq: tRNA abundance and modification analysis during zebrafish embryo development,PRJNA1061456,Other,,,,,,eggs DM R4,,strain:TLAB fish|isolate:NA|breed:cross of zebrafish AB and the natural variant TL Tupfel Longfin|cultivar:NA|ecotype:NA|dev stage:activated eggs|collection date:2022|geo loc name:Austria|sex:mixed|tissue:activated eggs|treatment:DM|BioSampleModel:Model organism or animal,,,,,,,,,tRAM seq of zebrafish: eggs DM rep4,EV08005,EV08005,RNA was extracted with Trizol tRNA isolated by size selection on denaturing polyacrylamide gel range 50 150 nt. The RNA was end repaired by alkaline deacylation and T4 PNK treatment three prime adapter ligated with T4 RNA ligase 2 reverse transcribed with TGIRT. The cDNA was circularized with CircLigase and amplified with KAPA HiFi polymerase using NEB Next indexed primers.,,,OTHER,TRANSCRIPTOMIC,size fractionation,SINGLE,ILLUMINA,NextSeq 500,,SRP482074,,,EV08005.R1.fastq.gz,fastq,740147520.0,5286768.0,EV08005.R1.fastq.gz,0:140,A:192131338;C:198130943;G:182616631;T:167216834;N:51774,140,,,,192131338,198130943,182616631,167216834,51774,SRX23108228,SRS20063063,SRA1780265,Medical University of Vienna|Cell and Developmental Biology,Medical University of Vienna,1,0.00052,,8e-05,,0.99922,,0.92537,,140,,T,,under 1.2% mapping rate,illumina,nextseq,unknown,size_fractionation,nebnext,bulk,unknown,unknown,,Austria,2024-01-05,Undetermined,Embryo,Undetermined,Embryo Imprecise
29784,SRR27435869,SRX23108227,SRS20063065,SRP482074,PRJNA1061456,tRAM seq: tRNA abundance and modification analysis during zebrafish embryo development,PRJNA1061456,Other,,,,,,eggs mock R4,,strain:TLAB fish|isolate:NA|breed:cross of zebrafish AB and the natural variant TL Tupfel Longfin|cultivar:NA|ecotype:NA|dev stage:activated eggs|collection date:2022|geo loc name:Austria|sex:mixed|tissue:activated eggs|treatment:mock|BioSampleModel:Model organism or animal,,,,,,,,,tRAM seq of zebrafish: eggs mock rep4,EV08004,EV08004,RNA was extracted with Trizol tRNA isolated by size selection on denaturing polyacrylamide gel range 50 150 nt. The RNA was end repaired by alkaline deacylation and T4 PNK treatment three prime adapter ligated with T4 RNA ligase 2 reverse transcribed with TGIRT. The cDNA was circularized with CircLigase and amplified with KAPA HiFi polymerase using NEB Next indexed primers.,,,OTHER,TRANSCRIPTOMIC,size fractionation,SINGLE,ILLUMINA,NextSeq 500,,SRP482074,,,EV08004.R1.fastq.gz,fastq,761663140.0,5440451.0,EV08004.R1.fastq.gz,0:140,A:194684966;C:192212418;G:196372829;T:178340184;N:52743,140,,,,194684966,192212418,196372829,178340184,52743,SRX23108227,SRS20063065,SRA1780265,Medical University of Vienna|Cell and Developmental Biology,Medical University of Vienna,1,0.00151,,0.00037,,0.99884,,0.82352,,140,,T,,under 1.2% mapping rate,illumina,nextseq,unknown,size_fractionation,nebnext,bulk,unknown,unknown,,Austria,2024-01-05,Undetermined,Embryo,Undetermined,Embryo Imprecise
36423,SRR516547,SRX156325,SRS347201,SRP013950,PRJNA169500,Danio rerio embryonic promoterome,PRJNA169500,Transcriptome Analysis,Goal of this study is to generate genome wide maps of transcription initiation throughout early embryonic development of zebrafish Danio rerio. Cap analysis of gene expression CAGE is used to detect transcription start sites at 1bp resolution. CAGE data is complemented by ChIPseq datasets for promoter associated histone modifications to study dynamic changes of promoter usage and chromatin configuration throughout early embryonic development.,,pubmed:24531765,Zebrafish wild type AB strain fertilized egg,D. rerio fertilized egg,D. rerio fertilized egg,,,,,,,,,,,CAGE D. rerio fertilized egg,CAGE D. rerio fertilized egg,D. rerio fertilized egg,1,,,OTHER,TRANSCRIPTOMIC,CAGE,SINGLE,ILLUMINA,Illumina Genome Analyzer IIx,270Application ReadForward1,SRP013950,,,CAGE_fertilized_egg.fastq,fastq,160948350.0,5961050.0,CAGE D. rerio fertilized egg,0:27,A:42030009;C:34700589;G:45399755;T:38817997;N:0,27,,,,42030009,34700589,45399755,38817997,0,SRX156325,SRS347201,SRA055273,University of Bergen,ZEPROME consortium,1,0.49394,,0.07554,,0.81684,,0.79759,,27,,B,,usable mapping rate,illumina,early_illumina,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2012-06-28,Undetermined,Embryo,Undetermined,Embryo Imprecise
36666,SRR800043,SRX257153,SRS405345,SRP020008,PRJNA193544,Danio rerio strain:Tubingen Epigenomics,PRJNA193544,Other,Early vertebrate embryos must achieve totipotency and prepare for zygotic genome activation ZGA. To better understand we determined DNAme profiles of zebrafish gametes multiple embryo stages flanking ZGA and somatic muscle and compared them to gene activity and histone modifications. First sperm chromatin patterns are virtually identical to those at ZGA. Unexpectedly in the oocyte many genes important for germline functions ie. piwil1 or early development ie. hox genes are DNA methylated. Remarkably these maternal loci are demethylated during zygotic/cleavage stages to precisely the state observed in sperm even in parthenogenetic embryos lacking a replicating paternal genome. Furthermore this cohort constitutes the genes/loci that acquire DNAme during development ie. ZGA to muscle. Finally DNA methyltransferase inhibition experiments suggest that DNAme silences particular gene/chromatin cohorts at ZGA preventing their precocious expression. Thus zebrafish achieve a 'totipotent' chromatin state at ZGA through paternal genome competency and maternal genome DNAme reprogramming.,,pubmed:23663776,Total RNA was extracted using Qiagen AllPrep DNA/RNA/Protein mini kit Cat # 80004 ribosomal RNA was depleted using RiboMinus kit A10837 08 Eukaryote Kit followed by directional RNA library preparation according to Illumina's standard protocol. Detailed experimental procedures and bioinformatics analysis can be found in the supplemental method section of the paper.,Generic sample from Danio rerio,sphere RNAseq totalRNARibominus,,strain:Tubingen|label:PE: paired end SE: single end|development stage:sphere,,,,,,,,,sphere RNAseq totalRNARibominus,sphere RNAseq totalRNARibominus,7986X2,Total RNA was extracted using Qiagen AllPrep DNA/RNA/Protein mini kit Cat # 80004 ribosomal RNA was depleted using RiboMinus kit A10837 08 Eukaryote Kit followed by directional RNA library preparation according to Illumina's standard protocol. Detailed experimental procedures and bioinformatics analysis can be found in the supplemental method section of the paper.,,,RNA-Seq,TRANSCRIPTOMIC,RT-PCR,SINGLE,ILLUMINA,Illumina HiSeq 2000,500Application ReadForward1,SRP020008,,,sphere_RNAseq_totalRNARibominus_SE_7986X2_110510_SN141_0338_AB06MWABXX_7.txt.gz,Illumina native,3029181300.0,60583626.0,7986X2 110510 SN141 0338 AB06MWABXX 7,0:50,A:768949744;C:733340278;G:903149841;T:623482299;N:259138,50,,,,768949744,733340278,903149841,623482299,259138,SRX257153,SRS405345,SRA072148,University of Utah|Brad Cairns Lab,University of Utah,1,0.83515,,0.15524,,0.81209,,0.81031,,50,,B,,usable mapping rate,illumina,hiseq_era,unknown,rrna_depletion,unknown,bulk,unknown,unknown,,United States,2015-07-22,Blastula,Embryo,Undetermined,Embryo Imprecise
36667,SRR800044,SRX257153,SRS405345,SRP020008,PRJNA193544,Danio rerio strain:Tubingen Epigenomics,PRJNA193544,Other,Early vertebrate embryos must achieve totipotency and prepare for zygotic genome activation ZGA. To better understand we determined DNAme profiles of zebrafish gametes multiple embryo stages flanking ZGA and somatic muscle and compared them to gene activity and histone modifications. First sperm chromatin patterns are virtually identical to those at ZGA. Unexpectedly in the oocyte many genes important for germline functions ie. piwil1 or early development ie. hox genes are DNA methylated. Remarkably these maternal loci are demethylated during zygotic/cleavage stages to precisely the state observed in sperm even in parthenogenetic embryos lacking a replicating paternal genome. Furthermore this cohort constitutes the genes/loci that acquire DNAme during development ie. ZGA to muscle. Finally DNA methyltransferase inhibition experiments suggest that DNAme silences particular gene/chromatin cohorts at ZGA preventing their precocious expression. Thus zebrafish achieve a 'totipotent' chromatin state at ZGA through paternal genome competency and maternal genome DNAme reprogramming.,,pubmed:23663776,Total RNA was extracted using Qiagen AllPrep DNA/RNA/Protein mini kit Cat # 80004 ribosomal RNA was depleted using RiboMinus kit A10837 08 Eukaryote Kit followed by directional RNA library preparation according to Illumina's standard protocol. Detailed experimental procedures and bioinformatics analysis can be found in the supplemental method section of the paper.,Generic sample from Danio rerio,sphere RNAseq totalRNARibominus,,strain:Tubingen|label:PE: paired end SE: single end|development stage:sphere,,,,,,,,,sphere RNAseq totalRNARibominus,sphere RNAseq totalRNARibominus,7986X2,Total RNA was extracted using Qiagen AllPrep DNA/RNA/Protein mini kit Cat # 80004 ribosomal RNA was depleted using RiboMinus kit A10837 08 Eukaryote Kit followed by directional RNA library preparation according to Illumina's standard protocol. Detailed experimental procedures and bioinformatics analysis can be found in the supplemental method section of the paper.,,,RNA-Seq,TRANSCRIPTOMIC,RT-PCR,SINGLE,ILLUMINA,Illumina HiSeq 2000,500Application ReadForward1,SRP020008,,,sphere_RNAseq_totalRNARibominus_SE_7986X2_110606_SN141_0359_BD0D8KABXX_6.txt.gz,Illumina native,3947123500.0,78942470.0,7986X2 110606 SN141 0359 BD0D8KABXX 6,0:50,A:1000468440;C:957437794;G:1171831772;T:817292633;N:92861,50,,,,1000468440,957437794,1171831772,817292633,92861,SRX257153,SRS405345,SRA072148,University of Utah|Brad Cairns Lab,University of Utah,1,0.81283,,0.14906,,0.81335,,0.81698,,50,,B,,usable mapping rate,illumina,hiseq_era,unknown,rrna_depletion,unknown,bulk,unknown,unknown,,United States,2015-07-22,Blastula,Embryo,Undetermined,Embryo Imprecise
36668,SRR800037,SRX257149,SRS405106,SRP020008,PRJNA193544,Danio rerio strain:Tubingen Epigenomics,PRJNA193544,Other,Early vertebrate embryos must achieve totipotency and prepare for zygotic genome activation ZGA. To better understand we determined DNAme profiles of zebrafish gametes multiple embryo stages flanking ZGA and somatic muscle and compared them to gene activity and histone modifications. First sperm chromatin patterns are virtually identical to those at ZGA. Unexpectedly in the oocyte many genes important for germline functions ie. piwil1 or early development ie. hox genes are DNA methylated. Remarkably these maternal loci are demethylated during zygotic/cleavage stages to precisely the state observed in sperm even in parthenogenetic embryos lacking a replicating paternal genome. Furthermore this cohort constitutes the genes/loci that acquire DNAme during development ie. ZGA to muscle. Finally DNA methyltransferase inhibition experiments suggest that DNAme silences particular gene/chromatin cohorts at ZGA preventing their precocious expression. Thus zebrafish achieve a 'totipotent' chromatin state at ZGA through paternal genome competency and maternal genome DNAme reprogramming.,,pubmed:23663776,Total RNA was extracted using Qiagen AllPrep DNA/RNA/Protein mini kit Cat # 80004 ribosomal RNA was depleted using RiboMinus kit A10837 08 Eukaryote Kit followed by directional RNA library preparation according to Illumina's standard protocol. Detailed experimental procedures and bioinformatics analysis can be found in the supplemental method section of the paper.,Generic sample from Danio rerio,egg RNAseq totalRNARibominus,,strain:Tubingen|label:PE: paired end SE: single end|dev stage:egg,,,,,,,,,egg RNAseq totalRNARibominus,egg RNAseq totalRNARibominus,7784X1,Total RNA was extracted using Qiagen AllPrep DNA/RNA/Protein mini kit Cat # 80004 ribosomal RNA was depleted using RiboMinus kit A10837 08 Eukaryote Kit followed by directional RNA library preparation according to Illumina's standard protocol. Detailed experimental procedures and bioinformatics analysis can be found in the supplemental method section of the paper.,,,RNA-Seq,TRANSCRIPTOMIC,RT-PCR,SINGLE,ILLUMINA,Illumina HiSeq 2000,500Application ReadForward1,SRP020008,,,,,3584440000.0,71688800.0,7784X1 110323 SN141 0332 A81FDVABXX 8,0:50,A:1013532157;C:812179975;G:992916103;T:765761452;N:50313,50,,,,1013532157,812179975,992916103,765761452,50313,SRX257149,SRS405106,SRA072148,University of Utah|Brad Cairns Lab,University of Utah,1,0.87304,,0.12853,,0.81988,,0.80407,,50,,B,,usable mapping rate,illumina,hiseq_era,unknown,rrna_depletion,unknown,bulk,unknown,unknown,,United States,2013-04-01,Undetermined,Embryo,Undetermined,Embryo Imprecise
36669,SRR800038,SRX257149,SRS405106,SRP020008,PRJNA193544,Danio rerio strain:Tubingen Epigenomics,PRJNA193544,Other,Early vertebrate embryos must achieve totipotency and prepare for zygotic genome activation ZGA. To better understand we determined DNAme profiles of zebrafish gametes multiple embryo stages flanking ZGA and somatic muscle and compared them to gene activity and histone modifications. First sperm chromatin patterns are virtually identical to those at ZGA. Unexpectedly in the oocyte many genes important for germline functions ie. piwil1 or early development ie. hox genes are DNA methylated. Remarkably these maternal loci are demethylated during zygotic/cleavage stages to precisely the state observed in sperm even in parthenogenetic embryos lacking a replicating paternal genome. Furthermore this cohort constitutes the genes/loci that acquire DNAme during development ie. ZGA to muscle. Finally DNA methyltransferase inhibition experiments suggest that DNAme silences particular gene/chromatin cohorts at ZGA preventing their precocious expression. Thus zebrafish achieve a 'totipotent' chromatin state at ZGA through paternal genome competency and maternal genome DNAme reprogramming.,,pubmed:23663776,Total RNA was extracted using Qiagen AllPrep DNA/RNA/Protein mini kit Cat # 80004 ribosomal RNA was depleted using RiboMinus kit A10837 08 Eukaryote Kit followed by directional RNA library preparation according to Illumina's standard protocol. Detailed experimental procedures and bioinformatics analysis can be found in the supplemental method section of the paper.,Generic sample from Danio rerio,egg RNAseq totalRNARibominus,,strain:Tubingen|label:PE: paired end SE: single end|dev stage:egg,,,,,,,,,egg RNAseq totalRNARibominus,egg RNAseq totalRNARibominus,7784X1,Total RNA was extracted using Qiagen AllPrep DNA/RNA/Protein mini kit Cat # 80004 ribosomal RNA was depleted using RiboMinus kit A10837 08 Eukaryote Kit followed by directional RNA library preparation according to Illumina's standard protocol. Detailed experimental procedures and bioinformatics analysis can be found in the supplemental method section of the paper.,,,RNA-Seq,TRANSCRIPTOMIC,RT-PCR,SINGLE,ILLUMINA,Illumina HiSeq 2000,500Application ReadForward1,SRP020008,,,,,2794240450.0,55884809.0,7784X1 110119 SN141 0323 B8162JABXX 8,0:50,A:792200981;C:632130044;G:772351331;T:596980885;N:577209,50,,,,792200981,632130044,772351331,596980885,577209,SRX257149,SRS405106,SRA072148,University of Utah|Brad Cairns Lab,University of Utah,1,0.86104,,0.12909,,0.82266,,0.80894,,50,,B,,usable mapping rate,illumina,hiseq_era,unknown,rrna_depletion,unknown,bulk,unknown,unknown,,United States,2013-04-01,Undetermined,Embryo,Undetermined,Embryo Imprecise
58479,SRR12436783,SRX8932472,SRS7188817,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,GEO accession GSM4724702 is currently private and is scheduled to be released on Mar 17 2023.,GSM4724702,,,Ski7 FER R3 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:ski7 / |developmental stage:fertilized egg|strain:TLAB,GSM4724702,GSM4724702: Ski7 FER R3 polyA; Danio rerio; RNA Seq,GSM4724702,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724702,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,Ski7_Ooc_FER_R3_polyA.fastq,fastq,1777842000.0,17778420.0,GSM4724702 r1,0:100,A:440367983;C:434184573;G:419300944;T:483847825;N:140675,100,,,,440367983,434184573,419300944,483847825,140675,SRX8932472,SRS7188817,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96519,,0.0558,,0.79762,,0.49071,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58480,SRR12436782,SRX8932471,SRS7188816,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,GEO accession GSM4724701 is currently private and is scheduled to be released on Mar 17 2023.,GSM4724701,,,Ski7 FER R2 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:ski7 / |developmental stage:fertilized egg|strain:TLAB,GSM4724701,GSM4724701: Ski7 FER R2 polyA; Danio rerio; RNA Seq,GSM4724701,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724701,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,Ski7_Ooc_FER_R2_polyA.fastq,fastq,1580941100.0,15809411.0,GSM4724701 r1,0:100,A:393346905;C:386319994;G:375568338;T:425580399;N:125464,100,,,,393346905,386319994,375568338,425580399,125464,SRX8932471,SRS7188816,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96387,,0.06115,,0.80251,,0.48311,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58481,SRR12436781,SRX8932470,SRS7188815,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,Ski7 FER R1 polyA,GSM4724700,,tissue:zebrafish egg|genotype:ski7 / |developmental stage:fertilized egg|strain:TLAB,Ski7 FER R1 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:ski7 / |developmental stage:fertilized egg|strain:TLAB,GSM4724700,GSM4724700: Ski7 FER R1 polyA; Danio rerio; RNA Seq,GSM4724700,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724700,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,Ski7_Ooc_FER_R1_polyA.fastq,fastq,2213300600.0,22133006.0,GSM4724700 r1,0:100,A:554108128;C:532528202;G:525489897;T:601097373;N:77000,100,,,,554108128,532528202,525489897,601097373,77000,SRX8932470,SRS7188815,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96118,,0.06109,,0.8046,,0.48546,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58482,SRR12436780,SRX8932469,SRS7188814,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,Ski7 ACT R3 polyA,GSM4724699,,tissue:zebrafish egg|genotype:ski7 / |developmental stage:activated egg|strain:TLAB,Ski7 ACT R3 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:ski7 / |developmental stage:activated egg|strain:TLAB,GSM4724699,GSM4724699: Ski7 ACT R3 polyA; Danio rerio; RNA Seq,GSM4724699,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724699,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,Ski7_Ooc_ACT_R3_polyA.fastq,fastq,1922804200.0,19228042.0,GSM4724699 r1,0:100,A:480850703;C:463917366;G:452391538;T:525491911;N:152682,100,,,,480850703,463917366,452391538,525491911,152682,SRX8932469,SRS7188814,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96391,,0.0566,,0.80046,,0.48338,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58483,SRR12436779,SRX8932468,SRS7188813,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,Ski7 ACT R2 polyA,GSM4724698,,tissue:zebrafish egg|genotype:ski7 / |developmental stage:activated egg|strain:TLAB,Ski7 ACT R2 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:ski7 / |developmental stage:activated egg|strain:TLAB,GSM4724698,GSM4724698: Ski7 ACT R2 polyA; Danio rerio; RNA Seq,GSM4724698,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724698,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,Ski7_Ooc_ACT_R2_polyA.fastq,fastq,1928647900.0,19286479.0,GSM4724698 r1,0:100,A:482751186;C:469163733;G:460738816;T:515841418;N:152747,100,,,,482751186,469163733,460738816,515841418,152747,SRX8932468,SRS7188813,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96439,,0.05875,,0.80921,,0.47651,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58484,SRR12436778,SRX8932467,SRS7188812,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,Ski7 ACT R1 polyA,GSM4724697,,tissue:zebrafish egg|genotype:ski7 / |developmental stage:activated egg|strain:TLAB,Ski7 ACT R1 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:ski7 / |developmental stage:activated egg|strain:TLAB,GSM4724697,GSM4724697: Ski7 ACT R1 polyA; Danio rerio; RNA Seq,GSM4724697,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724697,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,Ski7_Ooc_ACT_R1_polyA.fastq,fastq,1459115400.0,14591154.0,GSM4724697 r1,0:100,A:361126428;C:358381337;G:346060607;T:393431535;N:115493,100,,,,361126428,358381337,346060607,393431535,115493,SRX8932467,SRS7188812,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96515,,0.06732,,0.80395,,0.48544,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58485,SRR12436777,SRX8932466,SRS7188811,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,Ski7 INA R3 polyA,GSM4724696,,tissue:zebrafish egg|genotype:ski7 / |developmental stage:inactive egg|strain:TLAB,Ski7 INA R3 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:ski7 / |developmental stage:inactive egg|strain:TLAB,GSM4724696,GSM4724696: Ski7 INA R3 polyA; Danio rerio; RNA Seq,GSM4724696,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724696,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,Ski7_Ooc_SQU_R3_polyA.fastq,fastq,1063954100.0,10639541.0,GSM4724696 r1,0:100,A:265551085;C:258698639;G:249117151;T:290502423;N:84802,100,,,,265551085,258698639,249117151,290502423,84802,SRX8932466,SRS7188811,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96171,,0.05846,,0.77346,,0.49713,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58486,SRR12436776,SRX8932465,SRS7188810,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,Ski7 INA R2 polyA,GSM4724695,,tissue:zebrafish egg|genotype:ski7 / |developmental stage:inactive egg|strain:TLAB,Ski7 INA R2 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:ski7 / |developmental stage:inactive egg|strain:TLAB,GSM4724695,GSM4724695: Ski7 INA R2 polyA; Danio rerio; RNA Seq,GSM4724695,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724695,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,Ski7_Ooc_SQU_R2_polyA.fastq,fastq,12041609400.0,120416094.0,GSM4724695 r1,0:100,A:3032420667;C:2912793806;G:2864619397;T:3231646175;N:129355,100,,,,3032420667,2912793806,2864619397,3231646175,129355,SRX8932465,SRS7188810,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.9612,,0.0577,,0.81091,,0.48028,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58487,SRR12436775,SRX8932464,SRS7188809,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,Ski7 INA R1 polyA,GSM4724694,,tissue:zebrafish egg|genotype:ski7 / |developmental stage:inactive egg|strain:TLAB,Ski7 INA R1 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:ski7 / |developmental stage:inactive egg|strain:TLAB,GSM4724694,GSM4724694: Ski7 INA R1 polyA; Danio rerio; RNA Seq,GSM4724694,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724694,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,Ski7_Ooc_SQU_R1_polyA.fastq,fastq,1017000600.0,10170006.0,GSM4724694 r1,0:100,A:250669909;C:250298820;G:241072052;T:274878959;N:80860,100,,,,250669909,250298820,241072052,274878959,80860,SRX8932464,SRS7188809,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96496,,0.05463,,0.80592,,0.47885,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58512,SRR12436750,SRX8932439,SRS7188784,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,WT FER R3 polyA,GSM4724669,,tissue:zebrafish egg|genotype:wild type|developmental stage:fertilized egg|strain:TLAB,WT FER R3 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:wild type|developmental stage:fertilized egg|strain:TLAB,GSM4724669,GSM4724669: WT FER R3 polyA; Danio rerio; RNA Seq,GSM4724669,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724669,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,WT_Ooc_FER_R3_polyA.fastq,fastq,6771381900.0,67713819.0,GSM4724669 r1,0:100,A:1749508781;C:1638169429;G:1570468624;T:1813188646;N:46420,100,,,,1749508781,1638169429,1570468624,1813188646,46420,SRX8932439,SRS7188784,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96178,,0.0557,,0.8254,,0.49638,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58513,SRR12436749,SRX8932438,SRS7188783,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,WT FER R2 polyA,GSM4724668,,tissue:zebrafish egg|genotype:wild type|developmental stage:fertilized egg|strain:TLAB,WT FER R2 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:wild type|developmental stage:fertilized egg|strain:TLAB,GSM4724668,GSM4724668: WT FER R2 polyA; Danio rerio; RNA Seq,GSM4724668,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724668,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,WT_Ooc_FER_R2_polyA.fastq,fastq,1061307000.0,10613070.0,GSM4724668 r1,0:100,A:257645591;C:262618152;G:256246632;T:284713098;N:83527,100,,,,257645591,262618152,256246632,284713098,83527,SRX8932438,SRS7188783,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.97035,,0.03791,,0.81769,,0.49181,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58514,SRR12436748,SRX8932437,SRS7188782,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,WT FER R1 polyA,GSM4724667,,tissue:zebrafish egg|genotype:wild type|developmental stage:fertilized egg|strain:TLAB,WT FER R1 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:wild type|developmental stage:fertilized egg|strain:TLAB,GSM4724667,GSM4724667: WT FER R1 polyA; Danio rerio; RNA Seq,GSM4724667,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724667,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,WT_Ooc_FER_R1_polyA.fastq,fastq,1139600300.0,11396003.0,GSM4724667 r1,0:100,A:278063418;C:281065192;G:275555423;T:304826973;N:89294,100,,,,278063418,281065192,275555423,304826973,89294,SRX8932437,SRS7188782,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96734,,0.06497,,0.81515,,0.49598,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58515,SRR12436747,SRX8932436,SRS7188781,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,WT ACT R3 polyA,GSM4724666,,tissue:zebrafish egg|genotype:wild type|developmental stage:activated egg|strain:TLAB,WT ACT R3 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:wild type|developmental stage:activated egg|strain:TLAB,GSM4724666,GSM4724666: WT ACT R3 polyA; Danio rerio; RNA Seq,GSM4724666,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724666,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,WT_Ooc_ACT_R3_polyA.fastq,fastq,8285065900.0,82850659.0,GSM4724666 r1,0:100,A:2144352935;C:1997916723;G:1922332681;T:2220387512;N:76049,100,,,,2144352935,1997916723,1922332681,2220387512,76049,SRX8932436,SRS7188781,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96318,,0.06182,,0.82511,,0.49104,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58516,SRR12436746,SRX8932435,SRS7188780,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,WT ACT R2 polyA,GSM4724665,,tissue:zebrafish egg|genotype:wild type|developmental stage:activated egg|strain:TLAB,WT ACT R2 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:wild type|developmental stage:activated egg|strain:TLAB,GSM4724665,GSM4724665: WT ACT R2 polyA; Danio rerio; RNA Seq,GSM4724665,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724665,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,WT_Ooc_ACT_R2_polyA.fastq,fastq,1209882800.0,12098828.0,GSM4724665 r1,0:100,A:302800050;C:293974175;G:286616960;T:326395031;N:96584,100,,,,302800050,293974175,286616960,326395031,96584,SRX8932435,SRS7188780,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96659,,0.054,,0.81694,,0.49155,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58517,SRR12436745,SRX8932434,SRS7188779,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,WT ACT R1 polyA,GSM4724664,,tissue:zebrafish egg|genotype:wild type|developmental stage:activated egg|strain:TLAB,WT ACT R1 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:wild type|developmental stage:activated egg|strain:TLAB,GSM4724664,GSM4724664: WT ACT R1 polyA; Danio rerio; RNA Seq,GSM4724664,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724664,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,WT_Ooc_ACT_R1_polyA.fastq,fastq,1664829900.0,16648299.0,GSM4724664 r1,0:100,A:407654756;C:407749206;G:401595821;T:447697470;N:132647,100,,,,407654756,407749206,401595821,447697470,132647,SRX8932434,SRS7188779,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96622,,0.06206,,0.81477,,0.49247,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58518,SRR12436744,SRX8932433,SRS7188778,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,WT INA R3 polyA,GSM4724663,,tissue:zebrafish egg|genotype:wild type|developmental stage:inactive egg|strain:TLAB,WT INA R3 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:wild type|developmental stage:inactive egg|strain:TLAB,GSM4724663,GSM4724663: WT INA R3 polyA; Danio rerio; RNA Seq,GSM4724663,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724663,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,WT_Ooc_SQU_R3_polyA.fastq,fastq,7170278200.0,71702782.0,GSM4724663 r1,0:100,A:1852022154;C:1727198429;G:1664295627;T:1926714520;N:47470,100,,,,1852022154,1727198429,1664295627,1926714520,47470,SRX8932433,SRS7188778,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96163,,0.06005,,0.81686,,0.48888,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58519,SRR12436743,SRX8932432,SRS7188777,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,WT INA R2 polyA,GSM4724662,,tissue:zebrafish egg|genotype:wild type|developmental stage:inactive egg|strain:TLAB,WT INA R2 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:wild type|developmental stage:inactive egg|strain:TLAB,GSM4724662,GSM4724662: WT INA R2 polyA; Danio rerio; RNA Seq,GSM4724662,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724662,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,WT_Ooc_SQU_R2_polyA.fastq,fastq,3912697500.0,39126975.0,GSM4724662 r1,0:100,A:975441132;C:951912258;G:931850781;T:1053181584;N:311745,100,,,,975441132,951912258,931850781,1053181584,311745,SRX8932432,SRS7188777,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96632,,0.05261,,0.80685,,0.49154,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
58520,SRR12436742,SRX8932431,SRS7188776,SRP253077,PRJNA613025,Zebrafish Ski7 tunes RNA levels during the oocyte to embryo transition,GSE147112,Transcriptome Analysis,Post transcriptional mechanisms are crucial for the regulation of gene expression. These mechanisms are particularly important during rapid developmental transitions such as the oocyte to embryo transition which is characterized by dramatic changes to the developmental program in the absence of nuclear transcription. Under these conditions changes to the RNA content are solely dependent on RNA degradation. Although several mechanisms that promote RNA decay during embryogenesis have been identified it remains unclear which cellular machineries contribute to remodeling the maternal transcriptome during the oocyte to embryo transition. Here we focused on the auxiliary three prime to five prime degradation factor Ski7 in zebrafish as its mRNA peaks during this time frame. Homozygous ski7 mutant fish were viable and developed into morphologically normal adults yet they had decreased fertility. Consistent with the idea that Ski7 participates in remodeling the transcriptome during the oocyte to embryo transition transcriptome profiling identified stage specific mRNA targets of Ski7. Genes upregulated in ski7 mutants were generally lowly expressed in wild type suggesting that Ski7 maintains low transcript levels for this subset of genes. GO enrichment analyses of genes mis regulated in ski7 mutants implicated Ski7 in the regulation of redox processes. This was confirmed experimentally by an increased resistance of ski7 mutant embryos to reductive stress. Overall our results provide first insights into the physiological role of vertebrate Ski7 as an important post transcriptional regulator during the oocyte to embryo transition. Overall design: Transcriptome profiles of eleven time points of WT and ski7 mutant zebrafish samples during the oocyte to embryo transition. Every time point from each genotype was performed in triplicates.,,pubmed:33600438;pubmed:34556579,,WT INA R1 polyA,GSM4724661,,tissue:zebrafish egg|genotype:wild type|developmental stage:inactive egg|strain:TLAB,WT INA R1 polyA,Libraries were sequenced on a Illumina Hiseq 2500 on SR100 mode BAM files containing sequencing reads were converted to fastq files using samtools v1.9 Barcoded libraries were demultiplexed using fastx toolkit v0.0.14 Sequencing adapters were trimmed with cutadapt v1.18 and only reads longer than 25 bases were kept Reads were aligned to GRCz11 with Hisat2 v2.1.0 using the Ensembl transcriptome release 92. The following parameters were used: hisat2 q dta rna strandness R k 12 no unal Quantification of uniquely mapped reads raw reads was done with HTSeq v0.9.1 Quantification at the gene level to obtain transcript per million TPM was perfomed using Kallisto v0.43.0 Genome build: GRCz11 Supplementary files format and content: Tab delimited files containing raw reads or TPM,zebrafish egg,,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,Zebrafish Danio rerio were raised according to standard protocols 28°C water temperature; 14/10 hour light/dark cycle,genotype:wild type|developmental stage:inactive egg|strain:TLAB,GSM4724661,GSM4724661: WT INA R1 polyA; Danio rerio; RNA Seq,GSM4724661,,1,Total RNA was extracted using the standard TRIzol Invitrogen protocol. To obtain polyA+ RNA the polyA selection kit from LEXOGEN was used. For rRNA depleted samples RiboCop rRNA depletion kit from LEXOGEN was used. Strand specific cDNA libraries were generated using NEBNext Ultra Directional RNA Library Prep Kit for Illumina and indexed with NEBNext Multiplex Oligos for Illumina,GEO Accession:GSM4724661,RNA-Seq,TRANSCRIPTOMIC,cDNA,SINGLE,ILLUMINA,Illumina HiSeq 2500,,SRP253077,,,WT_Ooc_SQU_R1_polyA.fastq,fastq,1688458000.0,16884580.0,GSM4724661 r1,0:100,A:417912368;C:413739954;G:398861614;T:457809401;N:134663,100,,,,417912368,413739954,398861614,457809401,134663,SRX8932431,SRS7188776,SRA1055855,GEO,"Pauli lab, Research Institute of Molecular Pathology",1,0.96554,,0.06045,,0.81972,,0.48378,,100,,B,,usable mapping rate,illumina,hiseq_era,unknown,poly_a,nebnext,bulk,unknown,unknown,,Austria,2020-08-12,Undetermined,Embryo,Undetermined,Embryo Imprecise
59497,SRR11924327,SRX8469999,SRS6770650,SRP265951,PRJNA637293,The shift from early to late types of ribosomes in zebrafish development involves changes at a subset of rRNA 2' O Me sites,GSE151797,Other,A sequencing based profiling method RiboMeth seq for ribose methylations was used to study methylation patterns during Zebrafish Danio rerio development Overall design: All samples were analyzed in biological triplicates except for adult tail trunk that was in duplicate.,,pubmed:32912962,,small RNA oblong 2,GSM4591066,,source name:oblong|tissue:oblong|rna fraction:whole cell RNA depleted for rRNA and size selected for RNA < 200 nt,small RNA oblong 2,Library strategy: RiboMeth seq Barcode separation using python script Adaptor trimming using Cutadapt v. 2.0 Mapping to rRNA reference sequence using Bowtie2 v. 2.3.4.1 Counting read ends and calculating RiboMeth seq scores using python scripts The output FASTA files from small RNA seq were merged and used as the basis of the SNORD search and rRNA interaction prediction. Initially SNORDs were identified by running the merged FASTA file through snoScan Schattner et al. 2005 against zebrafish early and late rRNA reference sequences Locati et al. 2017. Genome build: early and late zebrafish rRNA locati et al. The reference sequences are available in the FASTA file on the series record. Supplementary files format and content: MS Excel file contains five prime and three prime read count and calculated RiboMeth seq score at all positions in the rRNA sequence.,oblong,,Tissues were homogenized and whole cell RNA was extracted using Qiazol Qiagen according to the manufacturer. For small RNA library construction one ug of whole cell RNA was subjected to rRNA depletion using the RiboMinusT Eukaryote System v2 Invitrogen and small RNA libraries were constructed using Ion Total RNA Seq Kit v2 ThermoFisher Scientific with minor modifications. In short the rRNA depleted RNA samples were enriched for small RNA <200 nt using the magnetic bead clean up module supplied with the kit or MonarchR RNA Cleanup Kit New England Biolabs adapters diluted 1:2 were ligated to the RNA for 2 h and the RNA subsequently reverse transcribed using Superscript IV ThermoFisher Scientific. The cDNA was purified using the magnetic bead clean up module without xxx selection. Amplification of cDNA and purification was performed according to the manufacturer. Manual template preparation of libraries was carried out on the Ion OneTouchTM 2 System ThermoFisher Scientific and sequenced on Ion 540TM chips the Ion GeneStudio S5 System.,,tissue:oblong|rna fraction:whole cell RNA depleted for rRNA and size selected for RNA < 200 nt,GSM4591066,GSM4591066: small RNA oblong 2; Danio rerio; OTHER,GSM4591066,,1,Tissues were homogenized and whole cell RNA was extracted using Qiazol Qiagen according to the manufacturer. For small RNA library construction one ug of whole cell RNA was subjected to rRNA depletion using the RiboMinusT Eukaryote System v2 Invitrogen and small RNA libraries were constructed using Ion Total RNA Seq Kit v2 ThermoFisher Scientific with minor modifications. In short the rRNA depleted RNA samples were enriched for small RNA <200 nt using the magnetic bead clean up module supplied with the kit or MonarchR RNA Cleanup Kit New England Biolabs adapters diluted 1:2 were ligated to the RNA for 2 h and the RNA subsequently reverse transcribed using Superscript IV ThermoFisher Scientific. The cDNA was purified using the magnetic bead clean up module without xxx selection. Amplification of cDNA and purification was performed according to the manufacturer. Manual template preparation of libraries was carried out on the Ion OneTouchTM 2 System ThermoFisher Scientific and sequenced on Ion 540TM chips the Ion GeneStudio S5 System.,GEO Accession:GSM4591066,OTHER,TRANSCRIPTOMIC,other,SINGLE,ION_TORRENT,Ion Torrent S5,,SRP265951,,,small_RNA_oblong_stage_2.fastq,fastq,131762340.0,2740821.0,GSM4591066 r1,0:48.07,A:36963883;C:35740715;G:33446415;T:25611327;N:0,48,,,,36963883,35740715,33446415,25611327,0,SRX8469999,SRS6770650,SRA1083099,GEO,"RNA Group - Prof. Henrik Nielsen, Department of Cellular and Molecular Medicine, University of Copenhagen",1,0.5346,,0.11052,,0.8967,,0.64134,,72,,B,,usable mapping rate,ion_torrent,ion_torrent,unknown,rrna_depletion,unknown,bulk,unknown,unknown,,Denmark,2020-06-04,Blastula,Embryo,Undetermined,Embryo Imprecise
59498,SRR11924326,SRX8469998,SRS6770649,SRP265951,PRJNA637293,The shift from early to late types of ribosomes in zebrafish development involves changes at a subset of rRNA 2' O Me sites,GSE151797,Other,A sequencing based profiling method RiboMeth seq for ribose methylations was used to study methylation patterns during Zebrafish Danio rerio development Overall design: All samples were analyzed in biological triplicates except for adult tail trunk that was in duplicate.,,pubmed:32912962,,small RNA oblong 1,GSM4591065,,source name:oblong|tissue:oblong|rna fraction:whole cell RNA depleted for rRNA and size selected for RNA < 200 nt,small RNA oblong 1,Library strategy: RiboMeth seq Barcode separation using python script Adaptor trimming using Cutadapt v. 2.0 Mapping to rRNA reference sequence using Bowtie2 v. 2.3.4.1 Counting read ends and calculating RiboMeth seq scores using python scripts The output FASTA files from small RNA seq were merged and used as the basis of the SNORD search and rRNA interaction prediction. Initially SNORDs were identified by running the merged FASTA file through snoScan Schattner et al. 2005 against zebrafish early and late rRNA reference sequences Locati et al. 2017. Genome build: early and late zebrafish rRNA locati et al. The reference sequences are available in the FASTA file on the series record. Supplementary files format and content: MS Excel file contains five prime and three prime read count and calculated RiboMeth seq score at all positions in the rRNA sequence.,oblong,,Tissues were homogenized and whole cell RNA was extracted using Qiazol Qiagen according to the manufacturer. For small RNA library construction one ug of whole cell RNA was subjected to rRNA depletion using the RiboMinusT Eukaryote System v2 Invitrogen and small RNA libraries were constructed using Ion Total RNA Seq Kit v2 ThermoFisher Scientific with minor modifications. In short the rRNA depleted RNA samples were enriched for small RNA <200 nt using the magnetic bead clean up module supplied with the kit or MonarchR RNA Cleanup Kit New England Biolabs adapters diluted 1:2 were ligated to the RNA for 2 h and the RNA subsequently reverse transcribed using Superscript IV ThermoFisher Scientific. The cDNA was purified using the magnetic bead clean up module without xxx selection. Amplification of cDNA and purification was performed according to the manufacturer. Manual template preparation of libraries was carried out on the Ion OneTouchTM 2 System ThermoFisher Scientific and sequenced on Ion 540TM chips the Ion GeneStudio S5 System.,,tissue:oblong|rna fraction:whole cell RNA depleted for rRNA and size selected for RNA < 200 nt,GSM4591065,GSM4591065: small RNA oblong 1; Danio rerio; OTHER,GSM4591065,,1,Tissues were homogenized and whole cell RNA was extracted using Qiazol Qiagen according to the manufacturer. For small RNA library construction one ug of whole cell RNA was subjected to rRNA depletion using the RiboMinusT Eukaryote System v2 Invitrogen and small RNA libraries were constructed using Ion Total RNA Seq Kit v2 ThermoFisher Scientific with minor modifications. In short the rRNA depleted RNA samples were enriched for small RNA <200 nt using the magnetic bead clean up module supplied with the kit or MonarchR RNA Cleanup Kit New England Biolabs adapters diluted 1:2 were ligated to the RNA for 2 h and the RNA subsequently reverse transcribed using Superscript IV ThermoFisher Scientific. The cDNA was purified using the magnetic bead clean up module without xxx selection. Amplification of cDNA and purification was performed according to the manufacturer. Manual template preparation of libraries was carried out on the Ion OneTouchTM 2 System ThermoFisher Scientific and sequenced on Ion 540TM chips the Ion GeneStudio S5 System.,GEO Accession:GSM4591065,OTHER,TRANSCRIPTOMIC,other,SINGLE,ION_TORRENT,Ion Torrent S5,,SRP265951,,,small_RNA_oblong_stage_1.fastq,fastq,90701340.0,2141489.0,GSM4591065 r1,0:42.35,A:25203959;C:24291162;G:23143516;T:18062703;N:0,42,,,,25203959,24291162,23143516,18062703,0,SRX8469998,SRS6770649,SRA1083099,GEO,"RNA Group - Prof. Henrik Nielsen, Department of Cellular and Molecular Medicine, University of Copenhagen",1,0.48132,,0.15952,,0.8756,,0.56134,,29,,B,,usable mapping rate,ion_torrent,ion_torrent,unknown,rrna_depletion,unknown,bulk,unknown,unknown,,Denmark,2020-06-04,Blastula,Embryo,Undetermined,Embryo Imprecise
59499,SRR11924325,SRX8469997,SRS6770648,SRP265951,PRJNA637293,The shift from early to late types of ribosomes in zebrafish development involves changes at a subset of rRNA 2' O Me sites,GSE151797,Other,A sequencing based profiling method RiboMeth seq for ribose methylations was used to study methylation patterns during Zebrafish Danio rerio development Overall design: All samples were analyzed in biological triplicates except for adult tail trunk that was in duplicate.,,pubmed:32912962,,small RNA 32 cell,GSM4591064,,source name:32 cell stage|tissue:32 cell stage|rna fraction:whole cell RNA depleted for rRNA and size selected for RNA < 200 nt,small RNA 32 cell,Library strategy: RiboMeth seq Barcode separation using python script Adaptor trimming using Cutadapt v. 2.0 Mapping to rRNA reference sequence using Bowtie2 v. 2.3.4.1 Counting read ends and calculating RiboMeth seq scores using python scripts The output FASTA files from small RNA seq were merged and used as the basis of the SNORD search and rRNA interaction prediction. Initially SNORDs were identified by running the merged FASTA file through snoScan Schattner et al. 2005 against zebrafish early and late rRNA reference sequences Locati et al. 2017. Genome build: early and late zebrafish rRNA locati et al. The reference sequences are available in the FASTA file on the series record. Supplementary files format and content: MS Excel file contains five prime and three prime read count and calculated RiboMeth seq score at all positions in the rRNA sequence.,32 cell stage,,Tissues were homogenized and whole cell RNA was extracted using Qiazol Qiagen according to the manufacturer. For small RNA library construction one ug of whole cell RNA was subjected to rRNA depletion using the RiboMinusT Eukaryote System v2 Invitrogen and small RNA libraries were constructed using Ion Total RNA Seq Kit v2 ThermoFisher Scientific with minor modifications. In short the rRNA depleted RNA samples were enriched for small RNA <200 nt using the magnetic bead clean up module supplied with the kit or MonarchR RNA Cleanup Kit New England Biolabs adapters diluted 1:2 were ligated to the RNA for 2 h and the RNA subsequently reverse transcribed using Superscript IV ThermoFisher Scientific. The cDNA was purified using the magnetic bead clean up module without xxx selection. Amplification of cDNA and purification was performed according to the manufacturer. Manual template preparation of libraries was carried out on the Ion OneTouchTM 2 System ThermoFisher Scientific and sequenced on Ion 540TM chips the Ion GeneStudio S5 System.,,tissue:32 cell stage|rna fraction:whole cell RNA depleted for rRNA and size selected for RNA < 200 nt,GSM4591064,GSM4591064: small RNA 32 cell; Danio rerio; OTHER,GSM4591064,,1,Tissues were homogenized and whole cell RNA was extracted using Qiazol Qiagen according to the manufacturer. For small RNA library construction one ug of whole cell RNA was subjected to rRNA depletion using the RiboMinusT Eukaryote System v2 Invitrogen and small RNA libraries were constructed using Ion Total RNA Seq Kit v2 ThermoFisher Scientific with minor modifications. In short the rRNA depleted RNA samples were enriched for small RNA <200 nt using the magnetic bead clean up module supplied with the kit or MonarchR RNA Cleanup Kit New England Biolabs adapters diluted 1:2 were ligated to the RNA for 2 h and the RNA subsequently reverse transcribed using Superscript IV ThermoFisher Scientific. The cDNA was purified using the magnetic bead clean up module without xxx selection. Amplification of cDNA and purification was performed according to the manufacturer. Manual template preparation of libraries was carried out on the Ion OneTouchTM 2 System ThermoFisher Scientific and sequenced on Ion 540TM chips the Ion GeneStudio S5 System.,GEO Accession:GSM4591064,OTHER,TRANSCRIPTOMIC,other,SINGLE,ION_TORRENT,Ion Torrent S5,,SRP265951,,,small_RNA_32_cell_stage.fastq,fastq,275040056.0,6091077.0,GSM4591064 r1,0:45.15,A:69136092;C:69806677;G:72527986;T:63569301;N:0,45,,,,69136092,69806677,72527986,63569301,0,SRX8469997,SRS6770648,SRA1083099,GEO,"RNA Group - Prof. Henrik Nielsen, Department of Cellular and Molecular Medicine, University of Copenhagen",1,0.67676,,0.30881,,0.86636,,0.63482,,22,,B,,usable mapping rate,ion_torrent,ion_torrent,unknown,rrna_depletion,unknown,bulk,unknown,unknown,,Denmark,2020-06-04,Cleavage,Embryo,Undetermined,Embryo Imprecise