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Identifying rare disease variants in the Genetic Analysis Workshop 17 simulated data: a comparison of several statistical approaches

机译:在遗传分析研讨会上识别罕见疾病变异17模拟数据:几种统计方法的比较

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Genome-wide association studies have been successful at identifying common disease variants associated with complex diseases, but the common variants identified have small effect sizes and account for only a small fraction of the estimated heritability for common diseases. Theoretical and empirical studies suggest that rare variants, which are much less frequent in populations and are poorly captured by single-nucleotide polymorphism chips, could play a significant role in complex diseases. Several new statistical methods have been developed for the analysis of rare variants, for example, the combined multivariate and collapsing method, the weighted-sum method and a replication-based method. Here, we apply and compare these methods to the simulated data sets of Genetic Analysis Workshop 17 and thereby explore the contribution of rare variants to disease risk. In addition, we investigate the usefulness of extreme phenotypes in identifying rare risk variants when dealing with quantitative traits. Finally, we perform a pathway analysis and show the importance of the vascular endothelial growth factor pathway in explaining different phenotypes.
机译:全基因组关联研究已成功鉴定出与复杂疾病相关的常见疾病变异,但是鉴定出的常见变异具有较小的效应量,仅占常见疾病估计遗传力的一小部分。理论和经验研究表明,稀有变体在复杂疾病中可能起重要作用,这种变体在人群中的发生频率要低得多,并且不能被单核苷酸多态性芯片捕获。已经开发了几种新的统计方法来分析稀有变体,例如,多元和折叠相结合的方法,加权和方法和基于复制的方法。在这里,我们将这些方法应用于遗传分析研讨会17的模拟数据集,并将其进行比较,从而探索罕见变异对疾病风险的贡献。此外,我们研究在处理数量性状时极端表型在识别罕见风险变异中的有用性。最后,我们进行了途径分析,并显示了血管内皮生长因子途径在解释不同表型中的重要性。

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