Integrating Mouse and Human Genetic Data to Move beyond GWAS and Identify Causal Genes in Cholesterol Metabolism.
暂无分享,去创建一个
Sushma Kaul | Jacqueline A. Brinkman | Dudley Lamming | G. Zajac | Samantha L St Clair | Brian Parks | Zhonggang Li | Dudley W Lamming | Brian W Parks | Zhonggang Li | M. De Giorgi | M. Sorci-Thomas | William R Lagor | Mary G Sorci-Thomas | James A Votava | Gregory J M Zajac | Jenny N Nguyen | Fernanda B Leyva Jaimes | Sophia M Ly | Jacqueline A Brinkman | Marco De Giorgi | Cara L Green | Sabrina L Belisle | Julia M Rios | David W Nelson | Chi-Liang Eric Yen | Sushma Kaul | W. Lagor | Cara L. Green | David W. Nelson | James A. Votava | Jenny Nguyen | Fernanda B. LEYVA JAIMES | Sabrina L. Belisle | C. Eric Yen
[1] D. Hardie,et al. Regulation of HMG‐CoA reductase: identification of the site phosphorylated by the AMP‐activated protein kinase in vitro and in intact rat liver. , 1990, The EMBO journal.
[2] J. Folch,et al. A simple method for the isolation and purification of total lipides from animal tissues. , 1957, The Journal of biological chemistry.
[3] N. Cox,et al. Obesity-associated variants within FTO form long-range functional connections with IRX3 , 2014, Nature.
[4] Carson C Chow,et al. Second-generation PLINK: rising to the challenge of larger and richer datasets , 2014, GigaScience.
[5] Tanya M. Teslovich,et al. Discovery and refinement of loci associated with lipid levels , 2013, Nature Genetics.
[6] D. Sabatini,et al. Structural basis for leucine sensing by the Sestrin2-mTORC1 pathway , 2016, Science.
[7] Mark Gerstein,et al. GENCODE reference annotation for the human and mouse genomes , 2018, Nucleic Acids Res..
[8] Steve D. M. Brown,et al. Disease Model Discovery from 3,328 Gene Knockouts by The International Mouse Phenotyping Consortium , 2017, Nature Genetics.
[9] R. Hammer,et al. Schoenheimer effect explained--feedback regulation of cholesterol synthesis in mice mediated by Insig proteins. , 2005, The Journal of clinical investigation.
[10] T. Osborne,et al. Selective Coactivator Interactions in Gene Activation by SREBP-1a and -1c , 2004, Molecular and Cellular Biology.
[11] S. Horvath,et al. A General Framework for Weighted Gene Co-Expression Network Analysis , 2005, Statistical applications in genetics and molecular biology.
[12] Robert W. Mills,et al. Discovery and validation of sub-threshold genome-wide association study loci using epigenomic signatures , 2016, eLife.
[13] Lars G Fritsche,et al. Efficiently controlling for case-control imbalance and sample relatedness in large-scale genetic association studies , 2017, Nature Genetics.
[14] R. Hammer,et al. Activation of cholesterol synthesis in preference to fatty acid synthesis in liver and adipose tissue of transgenic mice overproducing sterol regulatory element-binding protein-2. , 1998, The Journal of clinical investigation.
[15] Steve Horvath,et al. WGCNA: an R package for weighted correlation network analysis , 2008, BMC Bioinformatics.
[16] Mark Ellisman,et al. Maintenance of metabolic homeostasis by Sestrin2 and Sestrin3. , 2012, Cell metabolism.
[17] Christoph D. Rau,et al. Genetic architecture of insulin resistance in the mouse. , 2015, Cell metabolism.
[18] Mulin Jun Li,et al. Nature Genetics Advance Online Publication a N a Ly S I S the Support of Human Genetic Evidence for Approved Drug Indications , 2022 .
[19] X. Hua,et al. Sterol-Regulated Release of SREBP-2 from Cell Membranes Requires Two Sequential Cleavages, One Within a Transmembrane Segment , 1996, Cell.
[20] Dajiang J. Liu,et al. Exome chip meta-analysis identifies novel loci and East Asian-specific coding variants contributing to lipid levels and coronary artery disease , 2017, Nature Genetics.
[21] M. Karin,et al. Sestrin2 inhibits mTORC1 through modulation of GATOR complexes , 2015, Scientific Reports.
[22] P. Donnelly,et al. The UK Biobank resource with deep phenotyping and genomic data , 2018, Nature.
[23] John D. Storey,et al. Mapping the Genetic Architecture of Gene Expression in Human Liver , 2008, PLoS biology.
[24] D. Sabatini,et al. Sestrin2 is a leucine sensor for the mTORC1 pathway , 2016, Science.
[25] J. Danesh,et al. Association analyses based on false discovery rate implicate new loci for coronary artery disease , 2017, Nature Genetics.
[26] N. Cox,et al. Trait-Associated SNPs Are More Likely to Be eQTLs: Annotation to Enhance Discovery from GWAS , 2010, PLoS genetics.
[27] Xiaohui Xie,et al. Genome-wide analysis of SREBP-1 binding in mouse liver chromatin reveals a preference for promoter proximal binding to a new motif , 2009, Proceedings of the National Academy of Sciences.
[28] Xiang-An Li,et al. Procollagen C-endopeptidase Enhancer Protein 2 (PCPE2) Reduces Atherosclerosis in Mice by Enhancing Scavenger Receptor Class B1 (SR-BI)-mediated High-density Lipoprotein (HDL)-Cholesteryl Ester Uptake* , 2015, The Journal of Biological Chemistry.
[29] Christopher D. Brown,et al. Identification, Replication, and Functional Fine-Mapping of Expression Quantitative Trait Loci in Primary Human Liver Tissue , 2011, PLoS genetics.
[30] Robert A. Hegele,et al. Plasma lipoproteins: genetic influences and clinical implications , 2009, Nature Reviews Genetics.
[31] Olle Melander,et al. From noncoding variant to phenotype via SORT1 at the 1p13 cholesterol locus , 2010, Nature.
[32] Eleazar Eskin,et al. Genetic control of obesity and gut microbiota composition in response to high-fat, high-sucrose diet in mice. , 2013, Cell metabolism.
[33] P. Meikle,et al. Inhibition of Adenosine Monophosphate–Activated Protein Kinase–3‐Hydroxy‐3‐Methylglutaryl Coenzyme A Reductase Signaling Leads to Hypercholesterolemia and Promotes Hepatic Steatosis and Insulin Resistance , 2018, Hepatology communications.
[34] Michael Boehnke,et al. LocusZoom: regional visualization of genome-wide association scan results , 2010, Bioinform..
[35] Tanya M. Teslovich,et al. Genetics of Blood Lipids Among ~300,000 Multi-Ethnic Participants of the Million Veteran Program , 2018, Nature Genetics.
[36] Shane A. McCarthy,et al. Reference-based phasing using the Haplotype Reference Consortium panel , 2016, Nature Genetics.
[37] Wei Wang,et al. Sestrins inhibit mTORC1 kinase activation through the GATOR complex. , 2014, Cell reports.
[38] N. Risch,et al. A large electronic health record-based genome-wide study of serum lipids , 2018, Nature Genetics.
[39] Raquel S. Sevilla,et al. Exome-wide association study of plasma lipids in >300,000 individuals , 2017, Nature Genetics.
[40] D. Rader,et al. Tribbles-1 regulates hepatic lipogenesis through posttranscriptional regulation of C/EBPα. , 2015, The Journal of clinical investigation.
[41] Steven P. Gygi,et al. Defining the consequences of genetic variation on a proteome-wide scale , 2016, Nature.
[42] Xiaohui Xie,et al. Genome-wide localization of SREBP-2 in hepatic chromatin predicts a role in autophagy. , 2011, Cell metabolism.
[43] T. Manolio,et al. eXclusion: toward integrating the X chromosome in genome-wide association analyses. , 2013, American journal of human genetics.
[44] Tanya M. Teslovich,et al. Biological, Clinical, and Population Relevance of 95 Loci for Blood Lipids , 2010, Nature.
[45] Christopher M. DeBoever,et al. Global Biobank Engine: enabling genotype-phenotype browsing for biobank summary statistics , 2018, bioRxiv.
[46] Ellen T. Gelfand,et al. The Genotype-Tissue Expression (GTEx) project , 2013, Nature Genetics.
[47] Daniel J. Rader,et al. TTC39B Deficiency Stabilizes LXR Reducing both Atherosclerosis and Steatohepatitis , 2016, Nature.
[48] Steven P Gygi,et al. The Sestrins interact with GATOR2 to negatively regulate the amino-acid-sensing pathway upstream of mTORC1. , 2014, Cell reports.
[49] Manolis Kellis,et al. FTO Obesity Variant Circuitry and Adipocyte Browning in Humans. , 2015, The New England journal of medicine.
[50] Eleazar Eskin,et al. A high-resolution association mapping panel for the dissection of complex traits in mice. , 2010, Genome research.