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Integrative analysis of gene-environment interactions under a multi-response partially linear varying coefficient model

机译:多响应部分线性变化系数模型下基因与环境相互作用的综合分析

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摘要

Consider the integrative analysis of genetic data with multiple correlated response variables. The goal is to identify important gene-environment (G × E) interactions along with main gene and environment effects that are associated with the responses. The homogeneity and heterogeneity models can be adopted to describe the genetic basis of multiple responses. To accommodate possible nonlinear effects of some environment effects, a multi-response partially linear varying coefficient model is assumed. Penalization is adopted for marker selection. The proposed penalization method can select genetic variants with G × E interactions, no G × E interactions, and no main effects simultaneously. It adopts different penalties to accommodate the homogeneity and heterogeneity models. The proposed method can be effectively computed using a coordinate descent algorithm. Simulation study and the analysis of Health Professionals Follow-up Study, which has two correlated continuous traits, SNP measurements and multiple environment effects, show superior performance of the proposed method over its competitors.
机译:考虑具有多个相关响应变量的遗传数据的综合分析。目的是确定重要的基因-环境(G×E)相互作用以及与反应相关的主要基因和环境效应。可以采用同质和异质模型来描述多重反应的遗传基础。为了适应某些环境影响的可能的非线性影响,假设采用多响应部分线性变化系数模型。选择标记采用惩罚。提出的惩罚方法可以选择具有G×E相互作用,无G×E相互作用且没有主要影响的遗传变异。它采用不同的惩罚来适应同质性和异质性模型。所提出的方法可以使用坐标下降算法有效地计算。仿真研究和卫生专业人员后续研究的分析具有两个相关的连续特征,SNP测量值和多种环境影响,显示了该方法优于其竞争对手的性能。

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