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首页> 外文期刊>American Journal of Epidemiology >Genetic association and gene-environment interaction: a new method for overcoming the lack of exposure information in controls.
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Genetic association and gene-environment interaction: a new method for overcoming the lack of exposure information in controls.

机译:遗传关联和基因-环境相互作用:一种克服对照中缺乏暴露信息的新方法。

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摘要

The use of a reference control panel in genome-wide association studies is an interesting solution to the problem of how to reduce costs. In such designs, data on relevant environmental factors are usually collected only in cases, making it more difficult to deal with potential gene-environment interactions when testing for genetic association. However, under certain circumstances, neglecting an existing interaction with the environment may be detrimental in terms of statistical power to detect the genetic factor. In this paper, the authors propose a novel method based on a multinomial logistic regression model to overcome the lack of environmental exposure information in controls, by contrasting both exposed and unexposed cases with the control sample. For each case group, a genetic effect-size parameter is estimated, and the genetic association and the gene-environment interaction are tested jointly. The authors evaluate the performance of this method through asymptotic computations and simulations of cases and population controls under different models. In the presence of a gene-environment interaction, this approach outperforms other available methods that test for genetic association and gene-environment interaction either separately or jointly. Interestingly, it even has better power than the joint test requiring full knowledge of the environmental information in both cases and controls.
机译:在全基因组关联研究中使用参考控制面板是解决如何降低成本问题的有趣解决方案。在这种设计中,通常仅在某些情况下收集有关环境因素的数据,这使得在测试遗传关联时更难以处理潜在的基因-环境相互作用。但是,在某些情况下,忽略与环境的现有相互作用可能不利于检测遗传因素的统计能力。在本文中,作者提出了一种基于多项逻辑回归模型的新方法,以通过将对照案例中暴露和未暴露的病例进行对比,来克服对照中缺乏环境暴露信息。对于每个病例组,估计遗传效应大小参数,并共同测试遗传关联和基因-环境相互作用。作者通过渐进计算和不同模型下病例和种群控制的渐近计算和模拟来评估此方法的性能。在存在基因与环境的相互作用的情况下,该方法优于单独或共同测试遗传关联和基因与环境的相互作用的其他可用方法。有趣的是,它甚至比要求在案例和控件中都全面了解环境信息的联合测试具有更好的功能。

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