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A Statistical Framework for Joint eQTL Analysis in Multiple Tissues
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نویسنده
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flutre t. ,wen x. ,pritchard j. ,stephens m.
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منبع
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plos genetics - 2013 - دوره : 9 - شماره : 5
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چکیده
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Mapping expression quantitative trait loci (eqtls) represents a powerful and widely adopted approach to identifying putative regulatory variants and linking them to specific genes. up to now eqtl studies have been conducted in a relatively narrow range of tissues or cell types. however,understanding the biology of organismal phenotypes will involve understanding regulation in multiple tissues,and ongoing studies are collecting eqtl data in dozens of cell types. here we present a statistical framework for powerfully detecting eqtls in multiple tissues or cell types (or,more generally,multiple subgroups). the framework explicitly models the potential for each eqtl to be active in some tissues and inactive in others. by modeling the sharing of active eqtls among tissues,this framework increases power to detect eqtls that are present in more than one tissue compared with tissue-by-tissue analyses that examine each tissue separately. conversely,by modeling the inactivity of eqtls in some tissues,the framework allows the proportion of eqtls shared across different tissues to be formally estimated as parameters of a model,addressing the difficulties of accounting for incomplete power when comparing overlaps of eqtls identified by tissue-by-tissue analyses. applying our framework to re-analyze data from transformed b cells,t cells,and fibroblasts,we find that it substantially increases power compared with tissue-by-tissue analysis,identifying 63% more genes with eqtls (at fdr = 0.05). further,the results suggest that,in contrast to previous analyses of the same data,the majority of eqtls detectable in these data are shared among all three tissues. © 2013 flutre et al.
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آدرس
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department of human genetics,university of chicago,chicago,il,united states,department of plant genetics,institut national de la recherche agronomique,paris, France, department of biostatistics,university of michigan,ann harbor,mi, United States, department of human genetics,university of chicago,chicago,il,united states,howard hughes medical institute,chevy chase,md, United States, department of human genetics,university of chicago,chicago,il,united states,department of statistics,university of chicago,chicago,il, United States
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Authors
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