整合通路分析和基因表达的遗传学用于全基因组关联研究。
Integrating pathway analysis and genetics of gene expression for genome-wide association studies.
机构信息
Rosetta Inpharmatics, LLC, and Merck & Co., Inc., 401 Terry Avenue North, Seattle, WA 98109, USA.
出版信息
Am J Hum Genet. 2010 Apr 9;86(4):581-91. doi: 10.1016/j.ajhg.2010.02.020. Epub 2010 Mar 25.
Genome-wide association studies (GWAS) have achieved great success identifying common genetic variants associated with common human diseases. However, to date, the massive amounts of data generated from GWAS have not been maximally leveraged and integrated with other types of data to identify associations beyond those associations that meet the stringent genome-wide significance threshold. Here, we present a novel approach that leverages information from genetics of gene expression studies to identify biological pathways enriched for expression-associated genetic loci associated with disease in publicly available GWAS results. Specifically, we first identify SNPs in population-based human cohorts that associate with the expression of genes (eSNPs) in the metabolically active tissues liver, subcutaneous adipose, and omental adipose. We then use this functionally annotated set of SNPs to investigate pathways enriched for eSNPs associated with disease in publicly available GWAS data. As an example, we tested 110 pathways from the Kyoto Encylopedia of Genes and Genomes (KEGG) database and identified 16 pathways enriched for genes corresponding to eSNPs that show evidence of association with type 2 diabetes (T2D) in the Wellcome Trust Case Control Consortium (WTCCC) T2D GWAS. We then replicated these findings in the Diabetes Genetics Replication and Meta-analysis (DIAGRAM) study. Many of the pathways identified have been proposed as important candidate pathways for T2D, including the calcium signaling pathway, the PPAR signaling pathway, and TGF-beta signaling. Importantly, we identified other pathways not previously associated with T2D, including the tight junction, complement and coagulation pathway, and antigen processing and presentation pathway. The integration of pathways and eSNPs provides putative functional bridges between GWAS and candidate genes or pathways, thus serving as a potential powerful approach to identifying biological mechanisms underlying GWAS findings.
全基因组关联研究(GWAS)在鉴定与常见人类疾病相关的常见遗传变异方面取得了巨大成功。然而,迄今为止,GWAS 产生的大量数据尚未得到充分利用和整合,以识别超出满足全基因组显著阈值的关联之外的关联。在这里,我们提出了一种新的方法,该方法利用基因表达研究的遗传学信息来识别与疾病相关的表达相关遗传基因座丰富的生物途径,这些基因座可从公开的 GWAS 结果中获得。具体来说,我们首先在基于人群的人类队列中识别与肝脏、皮下脂肪和网膜脂肪等代谢活跃组织中的基因表达相关的 SNP(eSNP)。然后,我们使用此功能注释的 SNP 集来研究与公开的 GWAS 数据中与疾病相关的 eSNP 相关的途径。作为一个例子,我们测试了来自京都基因与基因组百科全书(KEGG)数据库的 110 个途径,并鉴定了与肥胖症相关的基因对应的途径,这些基因对应于与 2 型糖尿病(T2D)相关的证据,这些证据来自惠康信托基金会病例对照联盟(WTCCC)T2D GWAS。然后,我们在糖尿病遗传学复制和荟萃分析(DIAGRAM)研究中复制了这些发现。鉴定出的许多途径已被提议为 T2D 的重要候选途径,包括钙信号通路、PPAR 信号通路和 TGF-β信号通路。重要的是,我们鉴定了其他先前与 T2D 无关的途径,包括紧密连接、补体和凝血途径以及抗原加工和呈递途径。途径和 eSNP 的整合为 GWAS 和候选基因或途径之间提供了潜在的功能桥梁,因此成为识别 GWAS 结果背后的生物学机制的潜在强大方法。
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