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Investigation of multi-trait associations using pathway-based analysis of GWAS summary statistics

机译:使用基于路径的GWAS摘要统计分析对多特征关联进行调查

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摘要

BackgroundGenome-wide association studies (GWAS) have been successful in identifying disease-associated genetic variants. Recently, an increasing number of GWAS summary statistics have been made available to the research community, providing extensive repositories for studies of human complex diseases. In particular, cross-trait associations at the genetic level can be beneficial from large-scale GWAS summary statistics by using genetic variants that are associated with multiple traits. However, direct assessment of cross-trait associations using susceptibility loci has been challenging due to the complex genetic architectures in most diseases, calling for advantageous methods that could integrate functional interpretation and imply biological mechanisms>.
机译:背景全基因组关联研究(GWAS)已成功鉴定出疾病相关的遗传变异。最近,越来越多的GWAS摘要统计信息已提供给研究团体,为人类复杂疾病的研究提供了广泛的资料库。特别是,通过使用与多个性状相关的遗传变异,可以从大规模GWAS摘要统计中受益于基因水平的跨性状关联。但是,由于大多数疾病中复杂的遗传结构,使用易感基因座直接评估跨性状关联一直具有挑战性,这要求可以整合功能解释并暗示生物学机制的有利方法。

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