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On the simultaneous association analysis of large genomic regions: a massive multi-locus association test

机译:关于大型基因组区域的同时关联分析:大规模多位点关联测试

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Motivation: For samples of unrelated individuals, we propose a general analysis framework in which hundred thousands of genetic loci can be tested simultaneously for association with complex phenotypes. The approach is built on spatial-clustering methodology, assuming that genetic loci that are associated with the target phenotype cluster in certain genomic regions. In contrast to standard methodology for multilocus analysis, which has focused on the dimension reduction of the data, our multilocus association-clustering test profits from the availability of large numbers of genetic loci by detecting clusters of loci that are associated with the phenotype. Results: The approach is computationally fast and powerful, enabling the simultaneous association testing of large genomic regions. Even the entire genome or certain chromosomes can be tested simultaneously. Using simulation studies, the properties of the approach are evaluated. In an application to a genome-wide association study for chronic obstructive pulmonary disease, we illustrate the practical relevance of the proposed method by simultaneously testing all genotyped loci of the genome-wide association study and by testing each chromosome individually. Our findings suggest that statistical methodology that incorporates spatial-clustering information will be especially useful in whole-genome sequencing studies in which millions or billions of base pairs are recorded and grouped by genomic regions or genes, and are tested jointly for association.
机译:动机:对于不相关个体的样本,我们提出了一个通用分析框架,其中可以同时测试数十万个基因位点与复杂表型的关联。该方法建立在空间聚类方法的基础上,假设与某些基因组区域中的目标表型相关的遗传基因座簇。与专注于数据降维的标准多基因座分析方法相反,我们的多基因座关联聚类测试通过检测与表型相关的基因座簇,从大量遗传基因座的可用性中获利。结果:该方法计算快速且功能强大,可同时进行大型基因组区域的关联测试。甚至整个基因组或某些染色体也可以同时进行测试。使用模拟研究,评估了方法的属性。在针对慢性阻塞性肺疾病的全基因组关联研究中的应用中,我们通过同时测试全基因组关联研究的所有基因型基因座并通过分别测试每个染色体,说明了所提出方法的实际相关性。我们的发现表明,结合了空间聚类信息的统计方法将在全基因组测序研究中特别有用,在全基因组测序研究中,按基因组区域或基因记录并分组了数百万或数十亿个碱基对,并进行了关联测试。

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