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A unifying approach for haplotype analysis of quantitative traits in family-based association studies: Testing and estimating gene-environment interactions with complex exposure variables

机译:基于家庭的关联研究中定量性状单倍型分析的统一方法:测试和估计具有复杂暴露变量的基因-环境相互作用

摘要

We propose robust and e±cient tests and estimators for gene-environment/gene-drug interactions in family-based association studies. The methodology is designed for studies in which haplotypes, quantitative pheno- types and complex exposure/treatment variables are analyzed. Using causal inference methodology, we derive family-based association tests and estimators for the genetic main effects and the interactions. The tests and estimators are robust against population admixture and strati¯cation without requiring adjustment for confounding variables. We illustrate the practical relevance of our approach by an application to a COPD study. The data analysis suggests a gene-environment interaction between a SNP in the Serpine gene and smok- ing status/pack years of smoking that reduces the FEV1 volume by about 0.02 liter per pack year of smoking. Simulation studies show that the pro- posed methodology is su±ciently powered for realistic sample sizes and that it provides valid tests and effect size estimators in the presence of admixture and stratification.
机译:我们提出了基于家庭的关联研究中的基因-环境/基因-药物相互作用的鲁棒和高效的测试和估计器。该方法专为分析单倍型,定量表型和复杂暴露/治疗变量的研究而设计。使用因果推论方法,我们得出了基于家族的关联测试和估计器,用于遗传主要影响和相互作用。检验和估计量对人口混合和分层具有鲁棒性,而无需对混杂变量进行调整。我们通过在COPD研究中的应用说明了我们方法的实际相关性。数据分析表明,Serpine基因中的SNP与吸烟状态/吸烟年之间存在基因-环境相互作用,这使每包吸烟年的FEV1量减少约0.02升。仿真研究表明,所提出的方法足以满足实际样本量的需要,并且在存在混合和分层的情况下,它可以提供有效的测试和效应量估计器。

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