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A General framework for two-stage analysis of genome-wide association studies and its application to case-control studies

机译:全基因组关联研究两阶段分析的通用框架及其在病例对照研究中的应用

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摘要

Two-stage analyses of genome-wide association studies have been proposed as a means to improving power for designs including family-based association and gene-environment interaction testing. In these analyses, all markers are first screened via a statistic that may not be robust to an underlying assumption, and the markers thus selected are then analyzed in a second stage with a test that is independent from the first stage and is robust to the assumption in question. We give a general formulation of two-stage designs and show how one can use this formulation both to derive existing methods and to improve upon them, opening up a range of possible further applications. We show how using simple regression models in conjunction with external data such as average trait values can improve the power of genome-wide association studies. We focus on case-control studies and show how it is possible to use allele frequencies derived from an external reference to derive a powerful two-stage analysis. An illustration involving the Wellcome Trust Case-Control Consortium data shows several genome-wide-significant associations, subsequently validated, that were not significant in the standard analysis. We give some analytic properties of the methods and discuss some underlying principles.
机译:已经提出了全基因组关联研究的两阶段分析,作为提高设计能力的一种手段,包括基于家族的关联和基因-环境相互作用测试。在这些分析中,首先通过可能对基本假设不稳健的统计数据筛选所有标记,然后在第二阶段中使用独立于第一阶段且对假设稳健的测试分析如此选择的标记问题。我们给出了两阶段设计的一般表述,并展示了如何使用这种表述既可以推导现有方法又可以对其进行改进,从而开辟了一系列可能的进一步应用。我们展示了如何将简单的回归模型与外部数据(例如平均性状值)结合使用,可以提高全基因组关联研究的能力。我们专注于病例对照研究,并展示了如何使用从外部参考中得出的等位基因频率来进行有力的两阶段分析。涉及Wellcome Trust病例对照协会数据的插图显示了几个基因组范围内的重要关联,这些关联随后得到了验证,在标准分析中不重要。我们给出了该方法的一些分析性质,并讨论了一些基本原理。

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