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Gene-based interaction analysis by incorporating external linkage disequilibrium information

机译:通过整合外部连锁不平衡信息进行基于基因的相互作用分析

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摘要

Gene–gene interactions have an important role in complex human diseases. Detection of gene–gene interactions has long been a challenge due to their complexity. The standard method aiming at detecting SNP–SNP interactions may be inadequate as it does not model linkage disequilibrium (LD) among SNPs in each gene and may lose power due to a large number of comparisons. To improve power, we propose a principal component (PC)-based framework for gene-based interaction analysis. We analytically derive the optimal weight for both quantitative and binary traits based on pairwise LD information. We then use PCs to summarize the information in each gene and test for interactions between the PCs. We further extend this gene-based interaction analysis procedure to allow the use of imputation dosage scores obtained from a popular imputation software package, MACH, which incorporates multilocus LD information. To evaluate the performance of the gene-based interaction tests, we conducted extensive simulations under various settings. We demonstrate that gene-based interaction tests are more powerful than SNP-based tests when more than two variants interact with each other; moreover, tests that incorporate external LD information are generally more powerful than those that use genotyped markers only. We also apply the proposed gene-based interaction tests to a candidate gene study on high-density lipoprotein. As our method operates at the gene level, it can be applied to a genome-wide association setting and used as a screening tool to detect gene–gene interactions.
机译:基因-基因相互作用在复杂的人类疾病中具有重要作用。由于基因和基因相互作用的复杂性,检测一直以来都是一个挑战。旨在检测SNP–SNP相互作用的标准方法可能是不够的,因为它没有对每个基因中SNP之间的连锁不平衡(LD)进行建模,并且由于进行了大量比较而可能会失去功效。为了提高功能,我们提出了一个基于主成分(PC)的框架,用于基于基因的相互作用分析。我们基于成对的LD信息分析得出定量和二元性状的最佳权重。然后,我们使用PC汇总每个基因中的信息,并测试PC之间的相互作用。我们进一步扩展了这种基于基因的相互作用分析程序,以允许使用从流行的插补软件包MACH中获得的插补剂量评分,该软件包结合了多位点LD信息。为了评估基于基因的相互作用测试的性能,我们在各种设置下进行了广泛的模拟。我们证明了当两个以上的变体相互作用时,基于基因的相互作用测试比基于SNP的测试更强大。此外,结合外部LD信息的测试通常比仅使用基因型标记的测试更强大。我们还将提议的基于基因的相互作用测试应用于高密度脂蛋白的候选基因研究。由于我们的方法在基因水平上起作用,因此可以应用于全基因组关联设置,并用作检测基因与基因相互作用的筛选工具。

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