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Optimal unified approach for rare-variant association testing with application to small-sample case-control whole-exome sequencing studies

机译:稀有变异关联测试的最佳统一方法,并应用于小样本病例对照全基因组测序研究

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We propose in this paper a unified approach for testing the association between rare variants and phenotypes in sequencing association studies. This approach maximizes power by adaptively using the data to optimally combine the burden test and the nonburden sequence kernel association test (SKAT). Burden tests are more powerful when most variants in a region are causal and the effects are in the same direction, whereas SKAT is more powerful when a large fraction of the variants in a region are noncausal or the effects of causal variants are in different directions. The proposed unified test maintains the power in both scenarios. We show that the unified test corresponds to the optimal test in an extended family of SKAT tests, which we refer to as SKAT-O. The second goal of this paper is to develop a small-sample adjustment procedure for the proposed methods for the correction of conservative type I error rates of SKAT family tests when the trait of interest is dichotomous and the sample size is small. Both small-sample-adjusted SKAT and the optimal unified test (SKAT-O) are computationally efficient and can easily be applied to genome-wide sequencing association studies. We evaluate the finite sample performance of the proposed methods using extensive simulation studies and illustrate their application using the acute-lung-injury exome-sequencing data of the National Heart, Lung, and Blood Institute Exome Sequencing Project.
机译:我们提出了一种在测序关联研究中测试稀有变异体与表型之间关联的统一方法。这种方法通过自适应地使用数据来最佳地组合负担测试和非负担序列内核关联测试(SKAT),从而最大程度地提高了性能。当区域中的大多数变体是因果关系且影响方向相同时,负担测试更为有效,而当区域中的大部分变体为非因果关系或因果变体的影响方向不同时,SKAT的功能更为强大。提议的统一测试在这两种情况下都可以保持功能。我们证明了统一测试对应于扩展的SKAT测试系列(称为SKAT-O)中的最佳测试。本文的第二个目标是针对所关注特征是二分性且样本量较小的SKAT族检验的保守I型错误率的校正方法,开发一种小样本调整程序。小样本调整后的SKAT和最佳统一检验(SKAT-O)都具有计算效率,可以轻松地应用于全基因组测序关联研究。我们使用广泛的模拟研究评估了所提出方法的有限样本性能,并使用了美国国家心脏,肺和血液研究所外显子组测序项目的急性肺损伤外显子组测序数据说明了它们的应用。

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