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Gene- and pathway-based association tests for multiple traits with GWAS summary statistics

机译:基于基因和途径的多种性状关联测试与GWAS摘要统计

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摘要

SummaryTo identify novel genetic variants associated with complex traits and to shed new insights on underlying biology, in addition to the most popular single SNP-single trait association analysis, it would be useful to explore multiple correlated (intermediate) traits at the gene- or pathway-level by mining existing single GWAS or meta-analyzed GWAS data. For this purpose, we present an adaptive gene-based test and a pathway-based test for association analysis of multiple traits with GWAS summary statistics. The proposed tests are adaptive at both the SNP- and trait-levels; that is, they account for possibly varying association patterns (e.g. signal sparsity levels) across SNPs and traits, thus maintaining high power across a wide range of situations. Furthermore, the proposed methods are general: they can be applied to mixed types of traits, and to Z-statistics or P-values as summary statistics obtained from either a single GWAS or a meta-analysis of multiple GWAS. Our numerical studies with simulated and real data demonstrated the promising performance of the proposed methods.
机译:总结为了识别与复杂性状相关的新颖遗传变异并为基础生物学提供新的见解,除了最受欢迎的单个SNP-单一性状关联分析之外,在基因或途径中探索多个相关(中间)性状将很有用通过挖掘现有的单个GWAS或经过荟萃分析的GWAS数据来实现更高级别的服务为此,我们提出了基于自适应基因的测试和基于路径的测试,用于与GWAS摘要统计的多个性状的关联分析。拟议的测试在SNP和性状水平上都是自适应的。也就是说,它们说明了SNP和特质之间可能变化的关联模式(例如,信号稀疏度),从而在各种情况下都保持了较高的威力。此外,所提出的方法是通用的:它们可以应用于混合性状类型,也可以应用于Z统计量或P值,作为从单个GWAS或多个GWAS的荟萃分析获得的摘要统计量。我们用模拟和真实数据进行的数值研究证明了所提出方法的有希望的性能。

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