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 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 29215,SRR27489731,SRX23160978,SRS20111136,SRP483112,PRJNA1056276,five prime UTR MPRA during early zebrafish embryogenesis,PRJNA1056276,Other,The goal is to determine the contribution of zebrafish five prime UTR sequences to translation initiation. The five prime UTR MPRA reporter library was injected at the 1 cell stage and samples were collected during early stages of embryogenesis. Polysome profiling was performed to quantify ribosome occupancy of each five prime UTR reporter.,,,RNA product,control RNA library,RNA mMessage MPRA library,,strain:not applicable|age:not applicable|dev stage:not applicable|collection date:2022 05 16|geo loc name:Switzerland: Basel|sex:not applicable|tissue:not applicable|biomaterial provider:Schier lab|collected by:Madalena M. Reimao Pinto|genotype:not applicable|growth protocol:not applicable|sample type:IVT mRNA|sample number:50|replicate:unique sample|BioSampleModel:Model organism or animal,,,,,,,,,control RNA library,Library 50,Library 50,PCR product was amplified from DNA plasmid pool with reporter specific primer UMI were introduced ath the five primeend and library was amplified to include adapters compatible with Illumina sequencing.,,,OTHER,TRANSCRIPTOMIC,RT-PCR,PAIRED,ILLUMINA,Illumina NovaSeq 6000,,SRP483112,,,BSSE_QGF_206685_HGWLYDSX3_3_RNA_mMessage_MPRA_library_test_GGTTATAA_GATATCGA_S50_L003_R1_001_MM_1.fastq.gz BSSE_QGF_206685_HGWLYDSX3_3_RNA_mMessage_MPRA_library_test_GGTTATAA_GATATCGA_S50_L003_R2_001_MM_1.fastq.gz,fastq fastq,16695252486.0,55282293.0,BSSE QGF 206685 HGWLYDSX3 3 RNA mMessage MPRA library test GGTTATAA GATATCGA S50 L003 R1 001 MM 1.fastq.gz,0:151 1:151,A:4275447149;C:4413405571;G:3936523108;T:4069049357;N:827301,151,151,,,4275447149,4413405571,3936523108,4069049357,827301,SRX23160978,SRS20111136,SRA1775336,University of Basel|Biozentrum Basel,University of Basel,2,0.02176,0.00021,0.00058,2e-05,0.99056,0.99933,0.41475,0.48571,151,151,T,T,mates < 9% mapping rate,illumina,novaseq_era,5prime,other,unknown,bulk,unknown,unknown,,Switzerland,2024-01-11,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 37185,SRR1010334,SRX363385,SRS490049,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with mutated sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio MUTL7F transgenic line,,strain:AB strain MUTL7F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio MUTL7F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,D. rerio MUTL7F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,MUTL7F_transgene_R1.fastq MUTL7F_transgene_R2.fastq,fastq fastq,30678849.0,444621.0,D. rerio MUTL7F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,0:34 1:35,A:5994534;C:7452275;G:9596502;T:7623459;N:12079,34,35,,,5994534,7452275,9596502,7623459,12079,SRX363385,SRS490049,SRA104816,University of Bergen,ZEPROME consortium,2,0.38487,0.37445,0.0013,9e-05,0.99841,0.99991,0.00309,0.00012,34,35,B,B,biological fallback assumption,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37186,SRR1010333,SRX363384,SRS490049,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with mutated sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio MUTL7F transgenic line,,strain:AB strain MUTL7F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio MUTL7F transgenic line single locus CAGE endogeneous sf3a2,D. rerio MUTL7F transgenic line single locus CAGE endogeneous sf3a2,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,MUTL7F_endogenous_R2.fastq MUTL7F_endogenous_R1.fastq,fastq fastq,78367233.0,1135757.0,D. rerio MUTL7F transgenic line single locus CAGE endogeneous sf3a2,0:34 1:35,A:21010895;C:20506800;G:21883789;T:14935556;N:30193,34,35,,,21010895,20506800,21883789,14935556,30193,SRX363384,SRS490049,SRA104816,University of Bergen,ZEPROME consortium,2,0.56643,0.02972,6e-05,0.00056,0.99965,0.99995,0.00017,0.05769,34,35,B,T,mate2 technical by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37187,SRR1010332,SRX363383,SRS490048,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with mutated sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio MUTL6F transgenic line,,strain:AB strain MUTL6F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio MUTL6F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,D. rerio MUTL6F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,MUTL6F_transgene_R2.fastq MUTL6F_transgene_R1.fastq,fastq fastq,36838272.0,533888.0,D. rerio MUTL6F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,0:34 1:35,A:7267891;C:8939911;G:11513757;T:9101861;N:14852,34,35,,,7267891,8939911,11513757,9101861,14852,SRX363383,SRS490048,SRA104816,University of Bergen,ZEPROME consortium,2,0.35237,0.20738,0.00196,4e-05,0.9991,0.99987,0.00131,0.00022,34,35,B,B,mate2-mate1 similar by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37188,SRR1010331,SRX363382,SRS490048,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with mutated sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio MUTL6F transgenic line,,strain:AB strain MUTL6F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio MUTL6F transgenic line single locus CAGE endogeneous sf3a2,D. rerio MUTL6F transgenic line single locus CAGE endogeneous sf3a2,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,MUTL6F_endogenous_R1.fastq MUTL6F_endogenous_R2.fastq,fastq fastq,67887582.0,983878.0,D. rerio MUTL6F transgenic line single locus CAGE endogeneous sf3a2,0:34 1:35,A:18224546;C:17687428;G:19119778;T:12829091;N:26739,34,35,,,18224546,17687428,19119778,12829091,26739,SRX363382,SRS490048,SRA104816,University of Bergen,ZEPROME consortium,2,0.57761,0.02201,0.0001,0.00048,0.99975,0.99991,0.00011,0.02247,34,35,B,T,mate2 technical by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37189,SRR1010330,SRX363381,SRS490047,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with mutated sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio MUTL5F transgenic line,,strain:AB strain MUTL5F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio MUTL5F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,D. rerio MUTL5F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,MUTL5F_transgene_R1.fastq MUTL5F_transgene_R2.fastq,fastq fastq,48750708.0,706532.0,D. rerio MUTL5F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,0:34 1:35,A:9468865;C:11866504;G:15193605;T:12203213;N:18521,34,35,,,9468865,11866504,15193605,12203213,18521,SRX363381,SRS490047,SRA104816,University of Bergen,ZEPROME consortium,2,0.37677,0.39423,0.0018,0.00013,0.99801,0.99989,0.00295,0.00011,34,35,B,B,biological fallback assumption,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37190,SRR1010329,SRX363380,SRS490047,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with mutated sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio MUTL5F transgenic line,,strain:AB strain MUTL5F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio MUTL5F transgenic line single locus CAGE endogeneous sf3a2,D. rerio MUTL5F transgenic line single locus CAGE endogeneous sf3a2,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,MUTL5F_endogenous_R1.fastq MUTL5F_endogenous_R2.fastq,fastq fastq,85325883.0,1236607.0,D. rerio MUTL5F transgenic line single locus CAGE endogeneous sf3a2,0:34 1:35,A:22831000;C:22316529;G:23804395;T:16340044;N:33915,34,35,,,22831000,22316529,23804395,16340044,33915,SRX363380,SRS490047,SRA104816,University of Bergen,ZEPROME consortium,2,0.59785,0.01902,0.00632,0.00081,0.99941,0.99993,0.00056,0.11235,34,35,B,T,mate2 technical by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37191,SRR1010328,SRX363379,SRS490046,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with mutated sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio MUTL2F transgenic line,,strain:AB strain MUTL2F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio MUTL2F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,D. rerio MUTL2F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,MUTL2F_transgene_R1.fastq MUTL2F_transgene_R2.fastq,fastq fastq,68247900.0,989100.0,D. rerio MUTL2F transgenic line single locus CAGE mutated sf3a2:mCherry transgene,0:34 1:35,A:13037092;C:16853304;G:21557175;T:16772703;N:27626,34,35,,,13037092,16853304,21557175,16772703,27626,SRX363379,SRS490046,SRA104816,University of Bergen,ZEPROME consortium,2,0.37746,0.14836,0.00135,0.00215,0.99912,0.99995,0.00128,0.0,34,35,B,B,mate2-mate1 similar by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37192,SRR1010327,SRX363378,SRS490046,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with mutated sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio MUTL2F transgenic line,,strain:AB strain MUTL2F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio MUTL2F transgenic line single locus CAGE endogeneous sf3a2,D. rerio MUTL2F transgenic line single locus CAGE endogeneous sf3a2,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,MUTL2F_endogenous_R1.fastq MUTL2F_endogenous_R2.fastq,fastq fastq,85300215.0,1236235.0,D. rerio MUTL2F transgenic line single locus CAGE endogeneous sf3a2,0:34 1:35,A:22860161;C:22364533;G:24027064;T:16015109;N:33348,34,35,,,22860161,22364533,24027064,16015109,33348,SRX363378,SRS490046,SRA104816,University of Bergen,ZEPROME consortium,2,0.57324,0.0117,0.01138,0.00049,0.99943,0.99993,0.00087,0.02941,34,35,B,T,mate2 technical by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37193,SRR1010326,SRX363377,SRS490045,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with wild type sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio WTL3F transgenic line,,strain:AB strain WTL3F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio WTL3F transgenic line single locus CAGE wild type sf3a2:mCherry transgene,D. rerio WTL3F transgenic line single locus CAGE wild type sf3a2:mCherry transgene,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,WTL3F_transgene_R1.fastq WTL3F_transgene_R2.fastq,fastq fastq,36051879.0,522491.0,D. rerio WTL3F transgenic line single locus CAGE wild type sf3a2:mCherry transgene,0:34 1:35,A:6990071;C:8680451;G:10883119;T:9484027;N:14211,34,35,,,6990071,8680451,10883119,9484027,14211,SRX363377,SRS490045,SRA104816,University of Bergen,ZEPROME consortium,2,0.43354,0.14606,0.00247,9e-05,0.99896,0.99991,0.00217,0.00032,34,35,B,B,mate2-mate1 similar by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37194,SRR1010325,SRX363376,SRS490045,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with wild type sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio WTL3F transgenic line,,strain:AB strain WTL3F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio WTL3F transgenic line single locus CAGE endogenous sf3a2,D. rerio WTL3F transgenic line single locus CAGE endogenous sf3a2,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,WTL3F_endogenous_R1.fastq WTL3F_endogenous_R2.fastq,fastq fastq,78469284.0,1137236.0,D. rerio WTL3F transgenic line single locus CAGE endogenous sf3a2,0:34 1:35,A:21059562;C:20597989;G:21976657;T:14804744;N:30332,34,35,,,21059562,20597989,21976657,14804744,30332,SRX363376,SRS490045,SRA104816,University of Bergen,ZEPROME consortium,2,0.54772,0.02239,3e-05,0.0,0.99979,0.99993,0.00012,0.06756,34,35,B,T,mate2 technical by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37195,SRR1010324,SRX363375,SRS490044,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with wild type sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio WTL2F transgenic line,,strain:AB strain WTL2F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio WTL2F transgenic line single locus CAGE wild type sf3a2:mCherry transgene,D. rerio WTL2F transgenic line single locus CAGE wild type sf3a2:mCherry transgene,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,WTL2F_transgene_R1.fastq WTL2F_transgene_R2.fastq,fastq fastq,67052544.0,971776.0,D. rerio WTL2F transgenic line single locus CAGE wild type sf3a2:mCherry transgene,0:34 1:35,A:12413417;C:16491074;G:20506887;T:17614500;N:26666,34,35,,,12413417,16491074,20506887,17614500,26666,SRX363375,SRS490044,SRA104816,University of Bergen,ZEPROME consortium,2,0.47234,0.16966,0.00033,0.00039,0.99918,0.99993,0.00051,0.0,34,35,B,B,mate2-mate1 similar by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37196,SRR1010323,SRX363374,SRS490044,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with wild type sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio WTL2F transgenic line,,strain:AB strain WTL2F line|development stage:high 3.3 hpf,,,,,,,,,D. rerio WTL2F transgenic line single locus CAGE endogenous sf3a2,D. rerio WTL2F transgenic line single locus CAGE endogenous sf3a2,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,WTL2F_endogenous_R1.fastq WTL2F_endogenous_R2.fastq,fastq fastq,71493591.0,1036139.0,D. rerio WTL2F transgenic line single locus CAGE endogenous sf3a2,0:34 1:35,A:19123161;C:18705556;G:20092193;T:13545180;N:27501,34,35,,,19123161,18705556,20092193,13545180,27501,SRX363374,SRS490044,SRA104816,University of Bergen,ZEPROME consortium,2,0.56581,0.02161,0.00279,0.00056,0.99949,0.99991,0.00025,0.09333,34,35,B,T,mate2 technical by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37197,SRR1010322,SRX363361,SRS490033,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with wild type sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio WTL1F transgenic line,,strain:AB strain WTL1F line|dev stage:high 3.3 hpf,,,,,,,,,D. rerio WTL1F transgenic line single locus CAGE wild type sf3a2:mCherry transgene,D. rerio WTL1F transgenic line single locus CAGE wild type sf3a2:mCherry transgene,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,WTL1F_transgene_R1.fastq WTL1F_transgene_R2.fastq,fastq fastq,95222070.0,1380030.0,D. rerio WTL1F transgenic line single locus CAGE wild type sf3a2:mCherry transgene,0:34 1:35,A:17371572;C:23537350;G:29495884;T:24779827;N:37437,34,35,,,17371572,23537350,29495884,24779827,37437,SRX363361,SRS490033,SRA104816,University of Bergen,ZEPROME consortium,2,0.44573,0.30978,0.00036,0.00019,0.99943,0.99991,0.00023,0.00124,34,35,B,B,mate2-mate1 similar by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise 37198,SRR1010321,SRX363360,SRS490033,SRP030770,PRJNA222234,Danio rerio Targeted Locus Loci,PRJNA222234,Transcriptome Analysis,Goal of this study is to functionally validate regulatory elements within sf3a2 gene promoter which guide transcription start site selection for that promoter in the zebrafish oocyte.,,pubmed:24531765,stable transgenic line with wild type sf3a2 promoter construct driving expression of mCherry,Generic sample from Danio rerio,D. rerio WTL1F transgenic line,,strain:AB strain WTL1F line|dev stage:high 3.3 hpf,,,,,,,,,D. rerio WTL1F transgenic line single locus CAGE endogenous sf3a2,D. rerio WTL1F transgenic line single locus CAGE endogeneous sf3a2,1,1,,,OTHER,TRANSCRIPTOMIC,CAGE,PAIRED,ILLUMINA,Illumina HiSeq 2000,690Application ReadForward11Application ReadReverse35,SRP030770,,,WTL1F_endogenous_R1.fastq WTL1F_endogenous_R2.fastq,fastq fastq,64955082.0,941378.0,D. rerio WTL1F transgenic line single locus CAGE endogeneous sf3a2,0:34 1:35,A:17404375;C:16997013;G:18318738;T:12210960;N:23996,34,35,,,17404375,16997013,18318738,12210960,23996,SRX363360,SRS490033,SRA104816,University of Bergen,ZEPROME consortium,2,0.55528,0.02138,9e-05,0.00135,0.99963,0.99991,9e-05,0.10169,34,35,B,T,mate2 technical by mapping diff,illumina,hiseq_era,unknown,cage,unknown,bulk,unknown,unknown,,Unknown,2014-02-10,Blastula,Embryo,Undetermined,Embryo Imprecise