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Genetic association with multiple traits in the presence of population stratification

机译:群体分层存在下具有多种性状的遗传关联

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摘要

Testing association between a genetic marker and multiple-dependent traits is a challenging task when both binary and quantitative traits are involved. The inverted regression model is a convenient method, in which the traits are treated as predictors although the genetic marker is an ordinal response. It is known that population stratification (PS) often affects population-based association studies. However, how it would affect the inverted regression for pleiotropic association, especially with the mixed types of traits (binary and quantitative), is not examined and the performance of existing methods to correct for PS using the inverted regression analysis is unknown. In this paper, we focus on the methods based on genomic control and principal component analysis, and investigate type I error of pleiotropic association using the inverted regression model in the presence of PS with allele frequencies and the distributions (or disease prevalences) of multiple traits varying across the subpopulations. We focus on common alleles but simulation results for a rare variant are also reported. An application to the HapMap data is used for illustration.
机译:当涉及二元和定量性状时,测试遗传标记和多重依赖性性状之间的关联是一项艰巨的任务。反向回归模型是一种方便的方法,尽管遗传标记是顺序反应,但将特征作为预测因子。众所周知,人口分层(PS)通常会影响基于人口的关联研究。但是,尚未研究如何影响多效性关联的反向回归,尤其是混合性状类型(二进制和定量)时,使用反向回归分析校正PS的现有方法的性能尚不清楚。在本文中,我们着重于基于基因组控制和主成分分析的方法,并在存在等位基因频率和多个性状分布(或疾病患病率)的情况下,使用反向回归模型研究多效性关联的I型错误在亚人群中变化。我们专注于常见等位基因,但也报告了罕见变体的模拟结果。 HapMap数据的应用程序用于说明。

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