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通过汇集生物样本估计基因-环境交互作用。

Estimation of gene-environment interaction by pooling biospecimens.

机构信息

Division of Epidemiology, Statistics and Prevention Research, Eunice Kennedy Shriver National Institute of Child Health and Human Development, Rockville, MD, U.S.A.

出版信息

Stat Med. 2012 Nov 20;31(26):3241-52. doi: 10.1002/sim.5357. Epub 2012 Aug 1.

Abstract

Case-control studies are prone to low power for testing gene-environment interactions (GXE) given the need for a sufficient number of individuals on each strata of disease, gene, and environment. We propose a new study design to increase power by strategically pooling biospecimens. Pooling biospecimens allows us to increase the number of subjects significantly, thereby providing substantial increase in power. We focus on a special, although realistic case, where disease and environmental statuses are binary, and gene status is ordinal with each individual having 0, 1, or 2 minor alleles. Through pooling, we obtain an allele frequency for each level of disease and environmental status. Using the allele frequencies, we develop a new methodology for estimating and testing GXE that is comparable to the situation when we have complete data on gene status for each individual. We also explore the measurement process and its effect on the GXE estimator. Using an illustration, we show the effectiveness of pooling with an epidemiologic study, which tests an interaction for fiber and paraoxonase on anovulation. Through simulation, we show that taking 12 pooled measurements from 1000 individuals achieves more power than individually genotyping 500 individuals. Our findings suggest that strategic pooling should be considered when an investigator designs a pilot study to test for a GXE.

摘要

病例对照研究在检测基因-环境交互作用(GXE)时容易出现低功效,因为需要在疾病、基因和环境的每个分层中有足够数量的个体。我们提出了一种新的研究设计,通过策略性地汇集生物样本来提高功效。汇集生物样本可以显著增加研究对象的数量,从而大大提高功效。我们专注于一个特殊的、尽管现实的案例,其中疾病和环境状况是二分类的,而基因状况是有序的,每个个体有 0、1 或 2 个次要等位基因。通过汇集,我们获得了每个疾病和环境状况水平的等位基因频率。利用等位基因频率,我们开发了一种新的估计和检验 GXE 的方法,该方法与我们对每个个体的基因状态有完整数据的情况相当。我们还探讨了测量过程及其对 GXE 估计器的影响。通过一个实例,我们展示了在一项测试纤维和对氧磷酶对排卵障碍的相互作用的流行病学研究中,汇集的有效性。通过模拟,我们表明从 1000 个人中获取 12 个汇集测量值比单独对 500 个人进行基因分型更有功效。我们的研究结果表明,当研究人员设计一个用于测试 GXE 的试点研究时,应考虑进行策略性的汇集。

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