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fallback assumption", "illumina", "hiseq_era", "unknown", "cdna_unspecified", "unknown", "bulk", "unknown", "unknown", null, "China", "2025-02-18", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53258, "SRR9735192", "SRX6492152", "SRS5140748", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. 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However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. 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RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964280", "GSM3964280: Adipose KO A12; Danio rerio; RNA Seq", "GSM3964280", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. 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However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A11", "GSM3964279", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A11", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964279", "GSM3964279: Adipose KO A11; Danio rerio; RNA Seq", "GSM3964279", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964279", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A11_S70_R1_001.fastq KO-A11_S70_R2_001.fastq", "fastq fastq", 7278073849.0, 48245295.0, "GSM3964279 r1", "0:75.46 1:75.39", "A:1910309106;C:1710143808;G:1680260958;T:1970904301;N:6455676", 75, 75, null, null, 1910309106, 1710143808, 1680260958, 1970904301, 6455676, "SRX6492150", "SRS5140746", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93057, 0.93294, 0.08151, 0.08126, 0.64149, 0.64382, 0.49583, 0.50069, 76, 75, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53261, "SRR9735189", "SRX6492149", "SRS5140745", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A10", "GSM3964278", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A10", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964278", "GSM3964278: Adipose KO A10; Danio rerio; RNA Seq", "GSM3964278", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964278", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A10_S69_R1_001.fastq KO-A10_S69_R2_001.fastq", "fastq fastq", 6250335404.0, 41467476.0, "GSM3964278 r1", "0:75.40 1:75.33", "A:1623367800;C:1484173582;G:1452734282;T:1680039881;N:10019859", 75, 75, null, null, 1623367800, 1484173582, 1452734282, 1680039881, 10019859, "SRX6492149", "SRS5140745", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93288, 0.93316, 0.07513, 0.07471, 0.63863, 0.63926, 0.49527, 0.4986, 76, 75, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53262, "SRR9735188", "SRX6492148", "SRS5140744", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A9", "GSM3964277", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A9", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964277", "GSM3964277: Adipose KO A9; Danio rerio; RNA Seq", "GSM3964277", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964277", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A9_S68_R1_001.fastq KO-A9_S68_R2_001.fastq", "fastq fastq", 5146879384.0, 34123155.0, "GSM3964277 r1", "0:75.44 1:75.40", "A:1308295304;C:1251385303;G:1224804381;T:1356968336;N:5426060", 75, 75, null, null, 1308295304, 1251385303, 1224804381, 1356968336, 5426060, "SRX6492148", "SRS5140744", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93651, 0.93824, 0.02355, 0.02291, 0.72841, 0.73024, 0.47075, 0.46919, 76, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53263, "SRR9735187", "SRX6492147", "SRS5140743", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A8", "GSM3964276", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A8", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964276", "GSM3964276: Adipose KO A8; Danio rerio; RNA Seq", "GSM3964276", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964276", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A8_S67_R1_001.fastq KO-A8_S67_R2_001.fastq", "fastq fastq", 6451988817.0, 42793124.0, "GSM3964276 r1", "0:75.42 1:75.35", "A:1683086295;C:1528898615;G:1498099595;T:1733026886;N:8877426", 75, 75, null, null, 1683086295, 1528898615, 1498099595, 1733026886, 8877426, "SRX6492147", "SRS5140743", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93365, 0.93498, 0.07705, 0.0772, 0.64305, 0.64695, 0.48242, 0.49262, 76, 74, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53264, "SRR9735186", "SRX6492146", "SRS5140742", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A7", "GSM3964275", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A7", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964275", "GSM3964275: Adipose KO A7; Danio rerio; RNA Seq", "GSM3964275", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964275", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A7_S66_R1_001.fastq KO-A7_S66_R2_001.fastq", "fastq fastq", 5216519024.0, 34658426.0, "GSM3964275 r1", "0:75.29 1:75.22", "A:1355357386;C:1236474760;G:1213941961;T:1396130960;N:14613957", 75, 75, null, null, 1355357386, 1236474760, 1213941961, 1396130960, 14613957, "SRX6492146", "SRS5140742", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93221, 0.93203, 0.08221, 0.08139, 0.63678, 0.63958, 0.48897, 0.49047, 76, 75, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53265, "SRR9735185", "SRX6492145", "SRS5140741", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A6", "GSM3964274", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A6", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964274", "GSM3964274: Adipose KO A6; Danio rerio; RNA Seq", "GSM3964274", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964274", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A6_S60_R1_001.fastq KO-A6_S60_R2_001.fastq", "fastq fastq", 5029559020.0, 33338985.0, "GSM3964274 r1", "0:75.47 1:75.39", "A:1315693469;C:1191236029;G:1161411700;T:1356918715;N:4299107", 75, 75, null, null, 1315693469, 1191236029, 1161411700, 1356918715, 4299107, "SRX6492145", "SRS5140741", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93307, 0.93431, 0.0803, 0.07962, 0.63556, 0.63842, 0.48626, 0.48677, 75, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53266, "SRR9735184", "SRX6492144", "SRS5140740", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A5", "GSM3964273", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A5", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964273", "GSM3964273: Adipose KO A5; Danio rerio; RNA Seq", "GSM3964273", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964273", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A5_S59_R1_001.fastq KO-A5_S59_R2_001.fastq", "fastq fastq", 4248040067.0, 28185659.0, "GSM3964273 r1", "0:75.40 1:75.32", "A:1109513588;C:1005952629;G:981560840;T:1144059315;N:6953695", 75, 75, null, null, 1109513588, 1005952629, 981560840, 1144059315, 6953695, "SRX6492144", "SRS5140740", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93233, 0.9341, 0.07965, 0.07934, 0.64145, 0.64331, 0.4856, 0.4902, 75, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53267, "SRR9735183", "SRX6492143", "SRS5140739", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A4", "GSM3964272", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A4", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964272", "GSM3964272: Adipose KO A4; Danio rerio; RNA Seq", "GSM3964272", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964272", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A4_S58_R1_001.fastq KO-A4_S58_R2_001.fastq", "fastq fastq", 6392993509.0, 42397316.0, "GSM3964272 r1", "0:75.43 1:75.36", "A:1675757830;C:1504320009;G:1478667713;T:1726331052;N:7916905", 75, 75, null, null, 1675757830, 1504320009, 1478667713, 1726331052, 7916905, "SRX6492143", "SRS5140739", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93219, 0.93293, 0.07772, 0.07734, 0.63782, 0.64193, 0.4886, 0.49125, 75, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53268, "SRR9735182", "SRX6492142", "SRS5140738", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A3", "GSM3964271", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A3", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964271", "GSM3964271: Adipose KO A3; Danio rerio; RNA Seq", "GSM3964271", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964271", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A3_S57_R1_001.fastq KO-A3_S57_R2_001.fastq", "fastq fastq", 6746800381.0, 44738574.0, "GSM3964271 r1", "0:75.43 1:75.37", "A:1761609432;C:1594754083;G:1559830166;T:1823605880;N:7000820", 75, 75, null, null, 1761609432, 1594754083, 1559830166, 1823605880, 7000820, "SRX6492142", "SRS5140738", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93115, 0.9313, 0.07704, 0.07567, 0.63767, 0.63844, 0.49601, 0.5018, 75, 74, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53269, "SRR9735181", "SRX6492141", "SRS5140737", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A2", "GSM3964270", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A2", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964270", "GSM3964270: Adipose KO A2; Danio rerio; RNA Seq", "GSM3964270", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964270", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A2_S56_R1_001.fastq KO-A2_S56_R2_001.fastq", "fastq fastq", 5178912160.0, 34352174.0, "GSM3964270 r1", "0:75.42 1:75.34", "A:1355500844;C:1221527452;G:1199707224;T:1395740755;N:6435885", 75, 75, null, null, 1355500844, 1221527452, 1199707224, 1395740755, 6435885, "SRX6492141", "SRS5140737", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93426, 0.93454, 0.07738, 0.07682, 0.64212, 0.6464, 0.48878, 0.49331, 73, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53270, "SRR9735180", "SRX6492140", "SRS5140736", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose KO A1", "GSM3964269", null, "source name:Adipose|genotype:ASC 1 KO|age:6 month|tissue:Adipose", "Adipose KO A1", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:ASC 1 KO|age:6 month|tissue:Adipose", "GSM3964269", "GSM3964269: Adipose KO A1; Danio rerio; RNA Seq", "GSM3964269", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964269", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "KO-A1_S55_R1_001.fastq KO-A1_S55_R2_001.fastq", "fastq fastq", 5542839857.0, 36746361.0, "GSM3964269 r1", "0:75.44 1:75.40", "A:1446459244;C:1311682387;G:1288685673;T:1491071107;N:4941446", 75, 75, null, null, 1446459244, 1311682387, 1288685673, 1491071107, 4941446, "SRX6492140", "SRS5140736", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93776, 0.93895, 0.04491, 0.04446, 0.67675, 0.67872, 0.41719, 0.42005, 76, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53271, "SRR9735179", "SRX6492139", "SRS5140735", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A11", "GSM3964268", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A11", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964268", "GSM3964268: Adipose WT A11; Danio rerio; RNA Seq", "GSM3964268", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964268", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A11_S65_R1_001.fastq WT-A11_S65_R2_001.fastq", "fastq fastq", 5857223474.0, 38844475.0, "GSM3964268 r1", "0:75.43 1:75.36", "A:1521095503;C:1393796570;G:1358405170;T:1576525007;N:7401224", 75, 75, null, null, 1521095503, 1393796570, 1358405170, 1576525007, 7401224, "SRX6492139", "SRS5140735", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.9333, 0.93417, 0.07614, 0.07626, 0.64076, 0.64325, 0.49571, 0.49874, 76, 75, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53272, "SRR9735178", "SRX6492138", "SRS5140734", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A10", "GSM3964267", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A10", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964267", "GSM3964267: Adipose WT A10; Danio rerio; RNA Seq", "GSM3964267", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964267", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A10_S64_R1_001.fastq WT-A10_S64_R2_001.fastq", "fastq fastq", 5309702286.0, 35198072.0, "GSM3964267 r1", "0:75.46 1:75.39", "A:1388459753;C:1253922327;G:1230145617;T:1432366497;N:4808092", 75, 75, null, null, 1388459753, 1253922327, 1230145617, 1432366497, 4808092, "SRX6492138", "SRS5140734", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.9317, 0.93346, 0.08434, 0.0851, 0.63984, 0.64425, 0.48934, 0.49315, 76, 75, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53273, "SRR9735177", "SRX6492137", "SRS5140733", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A9", "GSM3964266", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A9", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964266", "GSM3964266: Adipose WT A9; Danio rerio; RNA Seq", "GSM3964266", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964266", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A9_S63_R1_001.fastq WT-A9_S63_R2_001.fastq", "fastq fastq", 4236242483.0, 28084714.0, "GSM3964266 r1", "0:75.45 1:75.38", "A:1109376701;C:1000854007;G:974810548;T:1146740655;N:4460572", 75, 75, null, null, 1109376701, 1000854007, 974810548, 1146740655, 4460572, "SRX6492137", "SRS5140733", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.9309, 0.93204, 0.08077, 0.0797, 0.63591, 0.63696, 0.48176, 0.4882, 75, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53274, "SRR9735176", "SRX6492136", "SRS5140732", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A8", "GSM3964265", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A8", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964265", "GSM3964265: Adipose WT A8; Danio rerio; RNA Seq", "GSM3964265", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964265", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A8_S62_R1_001.fastq WT-A8_S62_R2_001.fastq", "fastq fastq", 4940494520.0, 32753328.0, "GSM3964265 r1", "0:75.46 1:75.38", "A:1295977907;C:1165807642;G:1138647407;T:1335314520;N:4747044", 75, 75, null, null, 1295977907, 1165807642, 1138647407, 1335314520, 4747044, "SRX6492136", "SRS5140732", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93086, 0.93278, 0.08264, 0.08266, 0.63577, 0.6383, 0.49385, 0.48993, 76, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53275, "SRR9735175", "SRX6492135", "SRS5140731", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A7", "GSM3964264", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A7", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964264", "GSM3964264: Adipose WT A7; Danio rerio; RNA Seq", "GSM3964264", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964264", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A7_S61_R1_001.fastq WT-A7_S61_R2_001.fastq", "fastq fastq", 5512616919.0, 36544990.0, "GSM3964264 r1", "0:75.45 1:75.39", "A:1452114567;C:1290637600;G:1266464795;T:1497383449;N:6016508", 75, 75, null, null, 1452114567, 1290637600, 1266464795, 1497383449, 6016508, "SRX6492135", "SRS5140731", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93121, 0.93118, 0.09277, 0.09194, 0.62591, 0.63023, 0.49799, 0.50579, 76, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53276, "SRR9735174", "SRX6492134", "SRS5140730", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A6", "GSM3964263", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A6", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964263", "GSM3964263: Adipose WT A6; Danio rerio; RNA Seq", "GSM3964263", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964263", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A6_S54_R1_001.fastq WT-A6_S54_R2_001.fastq", "fastq fastq", 5724404718.0, 37976322.0, "GSM3964263 r1", "0:75.40 1:75.34", "A:1494251238;C:1350286944;G:1328643993;T:1541931890;N:9290653", 75, 75, null, null, 1494251238, 1350286944, 1328643993, 1541931890, 9290653, "SRX6492134", "SRS5140730", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93006, 0.93284, 0.08404, 0.08457, 0.63471, 0.63851, 0.49167, 0.49936, 76, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53277, "SRR9735173", "SRX6492133", "SRS5140729", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A5", "GSM3964262", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A5", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964262", "GSM3964262: Adipose WT A5; Danio rerio; RNA Seq", "GSM3964262", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964262", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A5_S53_R1_001.fastq WT-A5_S53_R2_001.fastq", "fastq fastq", 4659158769.0, 30909376.0, "GSM3964262 r1", "0:75.40 1:75.33", "A:1221375603;C:1098925945;G:1074577334;T:1257075301;N:7204586", 75, 75, null, null, 1221375603, 1098925945, 1074577334, 1257075301, 7204586, "SRX6492133", "SRS5140729", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.93225, 0.93214, 0.08272, 0.082, 0.63617, 0.63993, 0.49384, 0.49616, 74, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53278, "SRR9735172", "SRX6492132", "SRS5140728", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A4", "GSM3964261", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A4", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964261", "GSM3964261: Adipose WT A4; Danio rerio; RNA Seq", "GSM3964261", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964261", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A4_S52_R1_001.fastq WT-A4_S52_R2_001.fastq", "fastq fastq", 7788950127.0, 51651988.0, "GSM3964261 r1", "0:75.43 1:75.36", "A:2051073731;C:1826674351;G:1787914965;T:2114738619;N:8548461", 75, 75, null, null, 2051073731, 1826674351, 1787914965, 2114738619, 8548461, "SRX6492132", "SRS5140728", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.92964, 0.92925, 0.09108, 0.09118, 0.63287, 0.63721, 0.48738, 0.49099, 76, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53279, "SRR9735171", "SRX6492131", "SRS5140727", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A3", "GSM3964260", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A3", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964260", "GSM3964260: Adipose WT A3; Danio rerio; RNA Seq", "GSM3964260", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964260", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A3_S51_R1_001.fastq WT-A3_S51_R2_001.fastq", "fastq fastq", 5588378020.0, 37052916.0, "GSM3964260 r1", "0:75.45 1:75.37", "A:1469832305;C:1313012667;G:1286542723;T:1514017333;N:4972992", 75, 75, null, null, 1469832305, 1313012667, 1286542723, 1514017333, 4972992, "SRX6492131", "SRS5140727", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.92914, 0.92954, 0.08888, 0.08846, 0.6336, 0.63573, 0.48669, 0.49048, 75, 75, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53280, "SRR9735170", "SRX6492130", "SRS5140726", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A2", "GSM3964259", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A2", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964259", "GSM3964259: Adipose WT A2; Danio rerio; RNA Seq", "GSM3964259", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964259", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A2_S50_R1_001.fastq WT-A2_S50_R2_001.fastq", "fastq fastq", 5155694538.0, 34195331.0, "GSM3964259 r1", "0:75.42 1:75.35", "A:1348612302;C:1218323703;G:1189107260;T:1393758155;N:5893118", 75, 75, null, null, 1348612302, 1218323703, 1189107260, 1393758155, 5893118, "SRX6492130", "SRS5140726", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.92918, 0.92952, 0.08351, 0.08186, 0.62832, 0.63027, 0.48677, 0.49178, 75, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [53281, "SRR9735169", "SRX6492129", "SRS5140725", "SRP216059", "PRJNA556239", "Adipocyte serine uptake curbs ROS generation and visceral adiposity [Zebrafish]", "GSE134733", "Transcriptome Analysis", "Obesity  and visceral adiposity in particular  increases the risk of common metabolic diseases  including type 2 diabetes  cardiovascular disease  and several forms of cancer. However  the molecular mechanisms responsible for regional fat storage remain poorly characterized  preventing therapeutic innovation. We here applied a systematic genome wide screen and translational approach  and discovered a novel role for the adipocyte expressed neutral amino acid transporter SLC7A10/ASC 1 in the regulation of visceral adiposity. Among 65 genes showing both adipose depot dependent and fat loss dependent expression  27 genes further showed significant correlations with waist to hip WHR ratio adjusted for BMI. Among these ASC 1 was expressed at the highest level in isolated visceral adipocytes. Further  we found decreased ASC 1 mRNA in visceral  and not subcutaneous adipose tissue  in carriers of the KLF14 type 2 diabetes risk allele compared to the protective allele. By profiling amino acid fluxes during adipocyte differentiation in vitro  we found that ASC 1 inhibition by a selective inhibitor decreased adipocyte uptake particularly of serine in mature adipocytes. Interestingly  radiometric amino acid uptake assays showed ASC 1 dependent uptake of the serine D enantiomere. Using primary human and murine adipocyte models  we uncovered marked effects of inhibiting ASC 1 on mitochondrial respiratory capacity within hours and lipid accumulation within days. Finally  Asc 1 knockout KO zebrafish had increased body weight and adipocyte enlargement upon eight week overfeeding compared to wild type WT fish. RNA sequencing data from zebrafish adipose tissue showed up regulation of genes involved in fatty acid and lipid metabolism in the ASC 1 KOs  consistent with the increased lipid accumulation in the inhibitor treated cell models. Additionally  duox  an enzyme involved in ROS generation  showed higher expression in the KOs compared to the WTs. Importantly  we confirmed increased reactive oxygen species ROS generation within minutes and within hours when inhibiting ASC 1 in our in vitro cell models. Our study points to increased ROS generation and reduced mitochondrial respiratory capacity as central early mechanisms in development of visceral adiposity  and a role for adipocyte D serine transport via ASC 1 in these processes. Enhancing ASC 1 expression and/or activity in adipocytes  likely through primary effects on one carbon metabolism and redox balance  is a promising therapeutic strategy for reducing visceral adiposity and related diseases. Overall design: Total RNA Seq of Zebrafish adipose tissue were sequenced on the Illumina HiSeq4000 platform", "parent bioproject:PRJNA557596", null, null, "Adipose WT A1", "GSM3964258", null, "source name:Adipose|genotype:WT|age:6 month|tissue:Adipose", "Adipose WT A1", "Illumina Casava v1.8 Reads were aligned to the Zebrafish reference genome GRCz10 using HiSat Version 2.05  with options \u201chisat2 align s   wrapper basic 0  p 140\u201d Aligned reads were then put into featureCounts Version 1.5.2 with options \u201cfeatureCounts  T 64  p  t exon  g gene id\u201d Differential expression analysis was performed via DESeq2 Version 1.14.1 Genome build: GRCz10 Supplementary files format and content: tab delimited text files include DESeq2 normalised counts for each Sample ...", "Adipose", "Individuals were overfed for a period of 2 month on GEMMA Micro 500 Skretting  USA 3 times per day and given 3 drops of freshly hatched Artemia once per day.", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "Zebrafish were housed in 3 litre tanks for a period of 4 month and subsequently housed for a further 2 month in 1.5 litre tanks with 3 individuals per tank.", "genotype:WT|age:6 month|tissue:Adipose", "GSM3964258", "GSM3964258: Adipose WT A1; Danio rerio; RNA Seq", "GSM3964258", null, "1", "Tissue biopsies from three fish in each tank were pooled together  snap frozen and processed for kit based extraction of RNA  using the RNeasy kit QIAGEN  and quality checked via spectrophotometer. RNA libraries were prepared for sequencing using standard Illumina protocols", "GEO Accession:GSM3964258", "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 4000", null, "SRP216059", null, null, "WT-A1_S49_R1_001.fastq WT-A1_S49_R2_001.fastq", "fastq fastq", 4250306891.0, 28182505.0, "GSM3964258 r1", "0:75.44 1:75.37", "A:1119067057;C:999399803;G:974466658;T:1152728469;N:4644904", 75, 75, null, null, 1119067057, 999399803, 974466658, 1152728469, 4644904, "SRX6492129", "SRS5140725", "SRA925242", "GEO", "Hormone Laboratory, Clinical Institute, University of Bergen", 2, 0.92921, 0.93037, 0.08377, 0.08425, 0.63727, 0.64122, 0.48849, 0.49306, 75, 76, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Norway", "2019-07-23", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [70104, "SRR19548855", "SRX15600909", "SRS13301859", "SRP378691", "PRJNA846095", "Transcriptomic evolution across bilaterian tissues", "GSE205498", "Other", "We investigate tissue transcriptomic evolution across bilaterian animals by analyzing RNA seq data from eight different tissues across twenty species. Overall design: Characterization of ancestral and novel tissue gene expression patterns throughout bilaterian evolution.", null, "pubmed:35801824;pubmed:38622362;pubmed:39933573", null, "RNA seq of adult Danio rerio adipose tissue [Dre Adipose a]", "GSM6213744", null, "source name:Adult adipose tissue|tissue:Adipose|genome build:danRer10|gtf:danRer10 GTF enriched from Ensembl v80", "RNA seq of adult Danio rerio adipose tissue [Dre Adipose a]", "Estimated counts and TPMs were computed by Kallisto v0.44.0 Supplementary files format and content: Tab delimited file with length  effective length  estimated counts and transcript per million TPM for all species protein coding genes in the relative GTF", "Adult adipose tissue", null, "Rneasy plus Mini Kit Qiagen polyA selected stranded RNA seq; RNA libraries were prepared for sequencing using standard Illumina protocols", null, "tissue:Adipose|genome build:danRer10|gtf:danRer10 GTF enriched from Ensembl v80", "GSM6213744", "GSM6213744: RNA seq of adult Danio rerio adipose tissue [Dre Adipose a]; Danio rerio; RNA Seq", "GSM6213744 r1", "GSM6213744", "1", "Rneasy plus Mini Kit Qiagen polyA selected stranded RNA seq; RNA libraries were prepared for sequencing using standard Illumina protocols", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina HiSeq 2500", null, "SRP378691", null, null, "Dre_Adipose_a_R1-125.fq.gz Dre_Adipose_a_R2-125.fq.gz", "fastq fastq", 19085464750.0, 76341859.0, "GSM6213744 r1", "0:125 1:125", "A:4736764645;C:4749222175;G:4787002077;T:4805028216;N:7447637", 125, 125, null, null, 4736764645, 4749222175, 4787002077, 4805028216, 7447637, "SRX15600909", "SRS13301859", "SRA1432871", "CRG", "CRG", 2, 0.97251, 0.97417, 0.02687, 0.02652, 0.72823, 0.72987, 0.55308, 0.53025, 125, 125, "B", "B", "biological fallback assumption", "illumina", "hiseq_era", "unknown", "poly_a", "unknown", "bulk", "unknown", "unknown", null, "Unknown", "2022-06-05", "Adult", "Adult", "Adipose Tissue", "Adipose Tissue"], [74641, "SRR26902472", "SRX22596599", "SRS19602930", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "cold eAT  epicardial fat 6", "GSM7912825", null, "source name:adipose tissue|tissue:adipose tissue|cell line:epicardial fat|Sex:female|geo loc name:missing|collection date:missing", "cold eAT  epicardial fat 6", "RNA seq data were processed and analyzed using pseudo mapping to the zebrafish transcriptome GRCz11  Ensembl and unique transcript counts were performed using Kallisto v0.46.1. Transcript level counts were summarized into gene counts using Tximport v1.22.0  and genes with over 10 counts were maintained. Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.34.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for cold treated eAT  and control temperature epicardial adipocytes", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|cell line:epicardial fat|Sex:female", "GSM7912825", "GSM7912825: cold eAT  epicardial fat 6; Danio rerio; RNA Seq", "GSM7912825 r1", "GSM7912825", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "18_EAT_3_S61_L003_R1_001.fastq.gz 18_EAT_3_S61_L003_R2_001.fastq.gz", "fastq fastq", 36579991200.0, 182899956.0, "GSM7912825 r1", "0:100 1:100", "A:8145461331;C:10304868211;G:10196177152;T:7931483805;N:2000701", 100, 100, null, null, 8145461331, 10304868211, 10196177152, 7931483805, 2000701, "SRX22596599", "SRS19602930", "SRA1755255", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.95229, 0.89455, 0.06603, 0.06146, 0.9347, 0.94028, 0.89248, 0.89618, 100, 100, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", "unknown", null, "Germany", "2023-11-21", "Undetermined", "Adult", "Adipose Tissue", "Adipose Tissue"], [74642, "SRR26902473", "SRX22596598", "SRS19602928", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "cold eAT  epicardial fat 5", "GSM7912824", null, "source name:adipose tissue|tissue:adipose tissue|cell line:epicardial fat|Sex:female|geo loc name:missing|collection date:missing", "cold eAT  epicardial fat 5", "RNA seq data were processed and analyzed using pseudo mapping to the zebrafish transcriptome GRCz11  Ensembl and unique transcript counts were performed using Kallisto v0.46.1. Transcript level counts were summarized into gene counts using Tximport v1.22.0  and genes with over 10 counts were maintained. Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.34.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for cold treated eAT  and control temperature epicardial adipocytes", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|cell line:epicardial fat|Sex:female", "GSM7912824", "GSM7912824: cold eAT  epicardial fat 5; Danio rerio; RNA Seq", "GSM7912824 r1", "GSM7912824", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "18_EAT_2_S60_L003_R1_001.fastq.gz 18_EAT_2_S60_L003_R2_001.fastq.gz", "fastq fastq", 44027178200.0, 220135891.0, "GSM7912824 r1", "0:100 1:100", "A:9589007843;C:12544005309;G:12515602341;T:9376136142;N:2426565", 100, 100, null, null, 9589007843, 12544005309, 12515602341, 9376136142, 2426565, "SRX22596598", "SRS19602928", "SRA1755255", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.93679, 0.87737, 0.08679, 0.08125, 0.9151, 0.92263, 0.87011, 0.8743, 100, 100, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", "unknown", null, "Germany", "2023-11-21", "Undetermined", "Adult", "Adipose Tissue", "Adipose Tissue"], [74643, "SRR26902474", "SRX22596597", "SRS19602929", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "cold eAT  epicardial fat 4", "GSM7912823", null, "source name:adipose tissue|tissue:adipose tissue|cell line:epicardial fat|Sex:female|geo loc name:missing|collection date:missing", "cold eAT  epicardial fat 4", "RNA seq data were processed and analyzed using pseudo mapping to the zebrafish transcriptome GRCz11  Ensembl and unique transcript counts were performed using Kallisto v0.46.1. Transcript level counts were summarized into gene counts using Tximport v1.22.0  and genes with over 10 counts were maintained. Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.34.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for cold treated eAT  and control temperature epicardial adipocytes", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|cell line:epicardial fat|Sex:female", "GSM7912823", "GSM7912823: cold eAT  epicardial fat 4; Danio rerio; RNA Seq", "GSM7912823 r1", "GSM7912823", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "18_EAT_1_S59_L003_R1_001.fastq.gz 18_EAT_1_S59_L003_R2_001.fastq.gz", "fastq fastq", 41270229600.0, 206351148.0, "GSM7912823 r1", "0:100 1:100", "A:9105294909;C:11691383796;G:11565493480;T:8905831583;N:2225832", 100, 100, null, null, 9105294909, 11691383796, 11565493480, 8905831583, 2225832, "SRX22596597", "SRS19602929", "SRA1755255", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.93662, 0.87723, 0.0769, 0.07242, 0.91952, 0.92579, 0.88027, 0.89176, 100, 100, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", "unknown", null, "Germany", "2023-11-21", "Undetermined", "Adult", "Adipose Tissue", "Adipose Tissue"], [74644, "SRR26902475", "SRX22596596", "SRS19602927", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "control eAT  epicardial fat 3", "GSM7912822", null, "source name:adipose tissue|tissue:adipose tissue|cell line:epicardial fat|Sex:female|geo loc name:missing|collection date:missing", "control eAT  epicardial fat 3", "RNA seq data were processed and analyzed using pseudo mapping to the zebrafish transcriptome GRCz11  Ensembl and unique transcript counts were performed using Kallisto v0.46.1. Transcript level counts were summarized into gene counts using Tximport v1.22.0  and genes with over 10 counts were maintained. Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.34.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for cold treated eAT  and control temperature epicardial adipocytes", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|cell line:epicardial fat|Sex:female", "GSM7912822", "GSM7912822: control eAT  epicardial fat 3; Danio rerio; RNA Seq", "GSM7912822 r1", "GSM7912822", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "27_EAT_3_S58_L003_R1_001.fastq.gz 27_EAT_3_S58_L003_R2_001.fastq.gz", "fastq fastq", 43010873200.0, 215054366.0, "GSM7912822 r1", "0:100 1:100", "A:10273902176;C:11407089868;G:11344047061;T:9983469034;N:2365061", 100, 100, null, null, 10273902176, 11407089868, 11344047061, 9983469034, 2365061, "SRX22596596", "SRS19602927", "SRA1755255", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.95205, 0.89769, 0.06386, 0.06145, 0.92947, 0.93549, 0.90926, 0.91366, 100, 100, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", "unknown", null, "Germany", "2023-11-21", "Undetermined", "Adult", "Adipose Tissue", "Adipose Tissue"], [74645, "SRR26902476", "SRX22596595", "SRS19602926", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "control eAT  epicardial fat 2", "GSM7912821", null, "source name:adipose tissue|tissue:adipose tissue|cell line:epicardial fat|Sex:female|geo loc name:missing|collection date:missing", "control eAT  epicardial fat 2", "RNA seq data were processed and analyzed using pseudo mapping to the zebrafish transcriptome GRCz11  Ensembl and unique transcript counts were performed using Kallisto v0.46.1. Transcript level counts were summarized into gene counts using Tximport v1.22.0  and genes with over 10 counts were maintained. Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.34.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for cold treated eAT  and control temperature epicardial adipocytes", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|cell line:epicardial fat|Sex:female", "GSM7912821", "GSM7912821: control eAT  epicardial fat 2; Danio rerio; RNA Seq", "GSM7912821 r1", "GSM7912821", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "27_EAT_2_S57_L003_R2_001.fastq.gz 27_EAT_2_S57_L003_R1_001.fastq.gz", "fastq fastq", 38133432200.0, 190667161.0, "GSM7912821 r1", "0:100 1:100", "A:9220777607;C:9949450800;G:9982624020;T:8978518929;N:2060844", 100, 100, null, null, 9220777607, 9949450800, 9982624020, 8978518929, 2060844, "SRX22596595", "SRS19602926", "SRA1755255", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.96342, 0.9072, 0.06324, 0.06041, 0.92717, 0.93318, 0.91146, 0.90224, 100, 100, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", "unknown", null, "Germany", "2023-11-21", "Undetermined", "Adult", "Adipose Tissue", "Adipose Tissue"], [74646, "SRR26902477", "SRX22596594", "SRS19602925", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "control eAT  epicardial fat 1", "GSM7912820", null, "source name:adipose tissue|tissue:adipose tissue|cell line:epicardial fat|Sex:female|geo loc name:missing|collection date:missing", "control eAT  epicardial fat 1", "RNA seq data were processed and analyzed using pseudo mapping to the zebrafish transcriptome GRCz11  Ensembl and unique transcript counts were performed using Kallisto v0.46.1. Transcript level counts were summarized into gene counts using Tximport v1.22.0  and genes with over 10 counts were maintained. Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.34.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for cold treated eAT  and control temperature epicardial adipocytes", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|cell line:epicardial fat|Sex:female", "GSM7912820", "GSM7912820: control eAT  epicardial fat 1; Danio rerio; RNA Seq", "GSM7912820 r1", "GSM7912820", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "27_EAT_1_S56_L003_R1_001.fastq.gz 27_EAT_1_S56_L003_R2_001.fastq.gz", "fastq fastq", 39974303600.0, 199871518.0, "GSM7912820 r1", "0:100 1:100", "A:10036716123;C:10114630248;G:10121937185;T:9698802482;N:2217562", 100, 100, null, null, 10036716123, 10114630248, 10121937185, 9698802482, 2217562, "SRX22596594", "SRS19602925", "SRA1755255", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.95488, 0.8982, 0.04392, 0.04158, 0.94663, 0.95128, 0.93292, 0.93141, 100, 100, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", "unknown", null, "Germany", "2023-11-21", "Undetermined", "Adult", "Adipose Tissue", "Adipose Tissue"], [74647, "SRR23908258", "SRX19719740", "SRS17086856", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "vAT  visceral fat 3", "GSM7104994", null, "source name:adipose tissue|tissue:adipose tissue|tissue subtype:Viscerlal fat|Sex:female|geo loc name:missing|collection date:missing", "vAT  visceral fat 3", "RNA seq data were processed and analyzed using the PiGx RNAseq pipeline version 0.0.19 The raw reads were mapped to the zebrafish genome using STAR aligner version 2.7.3a Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.32.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for eAT and vAT", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|tissue subtype:Viscerlal fat|Sex:female", "GSM7104994", "GSM7104994: vAT  visceral fat 3; Danio rerio; RNA Seq", "GSM7104994 r1", "GSM7104994", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "vAT3_L001_R1.fastq.gz vAT3_L001_R2.fastq.gz", "fastq fastq", 10565948148.0, 52306674.0, "GSM7104994 r1", "0:101 1:101", "A:1907534975;C:3416174946;G:3360188823;T:1877111445;N:4937959", 101, 101, null, null, 1907534975, 3416174946, 3360188823, 1877111445, 4937959, "SRX19719740", "SRS17086856", "SRA1606837", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.95152, 0.88467, 0.18636, 0.18241, 0.93221, 0.93835, 0.76503, 0.78028, 101, 101, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", "unknown", null, "Germany", "2023-03-19", "Undetermined", "Adult", "Adipose Tissue", "Adipose Tissue"], [74648, "SRR23908259", "SRX19719739", "SRS17086855", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "vAT  visceral fat 2", "GSM7104993", null, "source name:adipose tissue|tissue:adipose tissue|tissue subtype:Viscerlal fat|Sex:female|geo loc name:missing|collection date:missing", "vAT  visceral fat 2", "RNA seq data were processed and analyzed using the PiGx RNAseq pipeline version 0.0.19 The raw reads were mapped to the zebrafish genome using STAR aligner version 2.7.3a Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.32.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for eAT and vAT", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|tissue subtype:Viscerlal fat|Sex:female", "GSM7104993", "GSM7104993: vAT  visceral fat 2; Danio rerio; RNA Seq", "GSM7104993 r1", "GSM7104993", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "vAT2_L001_R1.fastq.gz vAT2_L001_R2.fastq.gz", "fastq fastq", 9570642032.0, 47379416.0, "GSM7104993 r1", "0:101 1:101", "A:1723773940;C:3093746894;G:3053200070;T:1695451865;N:4469263", 101, 101, null, null, 1723773940, 3093746894, 3053200070, 1695451865, 4469263, "SRX19719739", "SRS17086855", "SRA1606837", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.93262, 0.87031, 0.18134, 0.17953, 0.95345, 0.95775, 0.75307, 0.78294, 101, 101, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", "unknown", null, "Germany", "2023-03-19", "Undetermined", "Adult", "Adipose Tissue", "Adipose Tissue"], [74649, "SRR23908260", "SRX19719738", "SRS17086854", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "vAT  visceral fat 1", "GSM7104992", null, "source name:adipose tissue|tissue:adipose tissue|tissue subtype:Viscerlal fat|Sex:female|geo loc name:missing|collection date:missing", "vAT  visceral fat 1", "RNA seq data were processed and analyzed using the PiGx RNAseq pipeline version 0.0.19 The raw reads were mapped to the zebrafish genome using STAR aligner version 2.7.3a Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.32.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for eAT and vAT", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|tissue subtype:Viscerlal fat|Sex:female", "GSM7104992", "GSM7104992: vAT  visceral fat 1; Danio rerio; RNA Seq", "GSM7104992 r1", "GSM7104992", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "vAT1_L001_R1.fastq.gz vAT1_L001_R2.fastq.gz", "fastq fastq", 8935423338.0, 44234769.0, "GSM7104992 r1", "0:101 1:101", "A:1612234838;C:2880684382;G:2851082026;T:1587227700;N:4194392", 101, 101, null, null, 1612234838, 2880684382, 2851082026, 1587227700, 4194392, "SRX19719738", "SRS17086854", "SRA1606837", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.92901, 0.87214, 0.18482, 0.18116, 0.95272, 0.957, 0.76369, 0.77972, 101, 101, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", "unknown", null, "Germany", "2023-03-19", "Undetermined", "Adult", "Adipose Tissue", "Adipose Tissue"], [74650, "SRR23908261", "SRX19719737", "SRS17086853", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "eAT  epicardial fat 3", "GSM7104991", null, "source name:adipose tissue|tissue:adipose tissue|tissue subtype:epicardial fat|Sex:female|geo loc name:missing|collection date:missing", "eAT  epicardial fat 3", "RNA seq data were processed and analyzed using the PiGx RNAseq pipeline version 0.0.19 The raw reads were mapped to the zebrafish genome using STAR aligner version 2.7.3a Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.32.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for eAT and vAT", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|tissue subtype:epicardial fat|Sex:female", "GSM7104991", "GSM7104991: eAT  epicardial fat 3; Danio rerio; RNA Seq", "GSM7104991 r1", "GSM7104991", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "eAT3_L001_R1.fastq.gz eAT3_L001_R2.fastq.gz", "fastq fastq", 9377159968.0, 46421584.0, "GSM7104991 r1", "0:101 1:101", "A:2098439200;C:2609083252;G:2593459500;T:2071786259;N:4391757", 101, 101, null, null, 2098439200, 2609083252, 2593459500, 2071786259, 4391757, "SRX19719737", "SRS17086853", "SRA1606837", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.93545, 0.8537, 0.11651, 0.10971, 0.87468, 0.88605, 0.81242, 0.83864, 101, 101, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", "unknown", null, "Germany", "2023-03-19", "Undetermined", "Adult", "Adipose Tissue", "Adipose Tissue"], [74651, "SRR23908262", "SRX19719736", "SRS17086852", "SRP428087", "PRJNA946307", "The zebrafish heart harbors a thermogenic beige fat depot analog of human epicardial adipose tissue", "GSE227670", "Other", "The main goal of this study was to examine the presence and specific transcriptomic profile of epicardial adipose tissue eAT in zebrafish.  We assessed how cold treatment affects the epicardial adipose tissue. Additional we provided some key differences between human  mouse and zebrafish epicardial adipose tissue. Overall design: We compared the transcriptomes of zebrafish eAT epicardial adipose tissue and vAT visceral adipose tissue using RNA sequencing RNA Seq from adult female zebrafish. Adult zebrafish  were acclimated from 27\u00b0C control temperature to 18\u00b0C by gradual reduction of tank water at the rate of 1 \u00b0C/h with an external water chiller. Cold acclimated fish were maintained at 18\u00b11\u00b0C for 24h  while control fish were maintained at 27\u00b11\u00b0C. Hearts were isolated to harvest eAT for RNA sequencing", null, "pubmed:38507414", null, "eAT  epicardial fat 2", "GSM7104990", null, "source name:adipose tissue|tissue:adipose tissue|tissue subtype:epicardial fat|Sex:female|geo loc name:missing|collection date:missing", "eAT  epicardial fat 2", "RNA seq data were processed and analyzed using the PiGx RNAseq pipeline version 0.0.19 The raw reads were mapped to the zebrafish genome using STAR aligner version 2.7.3a Read count normalization and downstream analysis of differential gene expression was carried out using DESeq2 R package version 1.32.0 Assembly: GRCz11 Supplementary files format and content: Tab separated values of DESeq2 normalized counts for eAT and vAT", "adipose tissue", null, "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|tissue subtype:epicardial fat|Sex:female", "GSM7104990", "GSM7104990: eAT  epicardial fat 2; Danio rerio; RNA Seq", "GSM7104990 r1", "GSM7104990", "1", "Adipocytes were collected for RNA extraction. 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Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "tissue:adipose tissue|tissue subtype:epicardial fat|Sex:female", "GSM7104989", "GSM7104989: eAT  epicardial fat 1; Danio rerio; RNA Seq", "GSM7104989 r1", "GSM7104989", "1", "Adipocytes were collected for RNA extraction. Total RNA was prepared using TRIzol Life Technologies  15596026 Libraries were prepared using SMARTer Stranded Total RNA Seq Kit v3 TaKaRa  634487 following manufacturer's protocols.", null, "RNA-Seq", "TRANSCRIPTOMIC", "cDNA", "PAIRED", "ILLUMINA", "Illumina NovaSeq 6000", null, "SRP428087", null, "loader:fastq load.py", "eAT1_L001_R1.fastq.gz eAT1_L001_R2.fastq.gz", "fastq fastq", 13621771828.0, 67434514.0, "GSM7104989 r1", "0:101 1:101", "A:3232962486;C:3590754208;G:3575836334;T:3215920897;N:6297903", 101, 101, null, null, 3232962486, 3590754208, 3575836334, 3215920897, 6297903, "SRX19719735", "SRS17086851", "SRA1606837", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", "AG Sawamiphak, Max-Delbr\u00fcck-Centrum f\u00fcr Molekulare Medizin", 2, 0.90965, 0.81819, 0.20716, 0.17706, 0.84386, 0.85742, 0.76749, 0.76572, 101, 101, "B", "B", "biological fallback assumption", "illumina", "novaseq_era", "full_length", "cdna_unspecified", "smarter", "bulk", "unknown", 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