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A global test for gene-gene interactions based on random matrix theory

机译:基于随机矩阵理论的基因-基因相互作用的全局检验

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摘要

Statistical interactions between markers of genetic variation, or gene-gene interactions, are believed to play an important role in the etiology of many multifactorial diseases and other complex phenotypes. Unfortunately, detecting gene-gene interactions is extremely challenging due to the large number of potential interactions and ambiguity regarding marker coding and interaction scale. For many data sets, there is insufficient statistical power to evaluate all candidate gene-gene interactions. In these cases, a global test for gene-gene interactions may be the best option. Global tests have much greater power relative to multiple individual interaction tests and can be used on subsets of the markers as an initial filter prior to testing for specific interactions. In this paper, we describe a novel global test for gene-gene interactions, the global epistasis test (GET), that is based on results from random matrix theory. As we show via simulation studies based on previously proposed models for common diseases including rheumatoid arthritis, type 2 diabetes, and breast cancer, our proposed GET method has superior performance characteristics relative to existing global gene-gene interaction tests. A glaucoma GWAS data set is used to demonstrate the practical utility of the GET method.
机译:遗传变异标记之间的统计相互作用或基因-基因相互作用被认为在许多多因素疾病和其他复杂表型的病因学中起着重要作用。不幸的是,由于大量潜在的相互作用以及关于标记编码和相互作用规模的模棱两可,检测基因与基因的相互作用极具挑战性。对于许多数据集,没有足够的统计能力来评估所有候选基因-基因相互作用。在这些情况下,对基因与基因相互作用进行全面测试可能是最好的选择。相对于多个单独的交互测试,全局测试具有更大的功效,并且可以在测试特定交互之前,在标记子集上用作初始过滤器。在本文中,我们基于随机矩阵理论的结果,描述了一种新的基因-基因相互作用的全球测试方法,即全球上位性测试方法(GET)。正如我们通过基于先前提出的针对风湿性关节炎,2型糖尿病和乳腺癌的常见疾病模型的模拟研究显示的那样,相对于现有的全球基因-基因相互作用测试,我们提出的GET方法具有更优越的性能。青光眼GWAS数据集用于演示GET方法的实用性。

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