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Retrospective analysis of main and interaction effects in genetic association studies of human complex traits

机译:人类复杂性状遗传关联研究中主要作用和相互作用的回顾性分析

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摘要

BackgroundThe etiology of multifactorial human diseases involves complex interactions between numerous environmental factors and alleles of many genes. Efficient statistical tools are demanded in identifying the genetic and environmental variants that affect the risk of disease development. This paper introduces a retrospective polytomous logistic regression model to measure both the main and interaction effects in genetic association studies of human discrete and continuous complex traits. In this model, combinations of genotypes at two interacting loci or of environmental exposure and genotypes at one locus are treated as nominal outcomes of which the proportions are modeled as a function of the disease trait assigning both main and interaction effects and with no assumption of normality in the trait distribution. Performance of our method in detecting interaction effect is compared with that of the case-only model.
机译:背景人类多因素疾病的病因涉及许多环境因素与许多基因的等位基因之间的复杂相互作用。需要有效的统计工具来确定影响疾病发展风险的遗传和环境变异。本文介绍了一种回顾性的多因素逻辑回归模型,用于测量人类离散和连续复杂性状的遗传关联研究中的主要作用和相互作用。在该模型中,两个相互作用位点的基因型或环境暴露与一个位点的基因型的组合被视为名义结果,其比例被建模为疾病特征的函数,既分配主要作用,也分配相互作用,并且没有正常假设在特征分布中。将我们的方法在检测交互效果方面的性能与仅案例模型的性能进行了比较。

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