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首页> 外文期刊>American Journal of Epidemiology >Tests for Gene-Environment Interactions and Joint Effects With Exposure Misclassification
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Tests for Gene-Environment Interactions and Joint Effects With Exposure Misclassification

机译:基因环境相互作用和联合效应的暴露分类错误测试

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The number of methods for genome-wide testing of gene-environment (G-E) interactions continues to increase, with the aim of discovering new genetic risk factors and obtaining insight into the disease-gene-environment relationship. The relative performance of these methods, assessed on the basis of family-wise type I error rate and power, depends on underlying disease-gene-environment associations, estimates of which may be biased in the presence of exposure misclassification. This simulation study expands on a previously published simulation study of methods for detecting G-E interactions by evaluating the impact of exposure misclassification. We consider 7 single-step and modular screening methods for identifying G-E interaction at a genome-wide level and 7 joint tests for genetic association and G-E interaction, for which the goal is to discover new genetic susceptibility loci by leveraging G-E interaction when present. In terms of statistical power, modular methods that screen on the basis of the marginal disease-gene relationship are more robust to exposure misclassification. Joint tests that include main/marginal effects of a gene display a similar robustness, which confirms results from earlier studies. Our results offer an increased understanding of the strengths and limitations of methods for genome-wide searches for G-E interaction and joint tests in the presence of exposure misclassification.
机译:基因组环境(G-E)相互作用的全基因组测试方法的数量不断增加,目的是发现新的遗传风险因素并深入了解疾病与基因-环境之间的关系。这些方法的相对性能(基于家庭I型错误率和功效进行评估)取决于潜在的疾病-基因-环境关联,在暴露分类错误的情况下,其估计值可能会有所偏差。该模拟研究是对先前发布的通过评估暴露错误分类的影响来检测G-E相互作用的方法的模拟研究的扩展。我们考虑了7种用于在全基因组水平鉴定G-E相互作用的单步和模块化筛选方法,以及7种遗传关联和G-E相互作用的联合测试,其目的是通过利用G-E相互作用(如果存在)来发现新​​的遗传易感基因座。在统计功效方面,基于边际疾病-基因关系筛选的模块化方法对于暴露分类错误更为有效。包括基因主要/边际效应的联合测试显示出相似的鲁棒性,这证实了早期研究的结果。我们的结果提供了对在暴露分类错误的情况下全基因组搜索G-E相互作用和联合测试的方法的优势和局限性的进一步了解。

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