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An evaluation of different meta-analysis approaches in the presence of allelic heterogeneity

机译:等位基因异质性存在下不同荟萃分析方法的评估

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摘要

Meta-analysis has proven a useful tool in genetic association studies. Allelic heterogeneity can arise from ethnic background differences across populations being meta-analyzed (for example, in search of common frequency variants through genome-wide association studies), and through the presence of multiple low frequency and rare associated variants in the same functional unit of interest (for example, within a gene or a regulatory region). The latter challenge will be increasingly relevant in whole-genome and whole-exome sequencing studies investigating association with complex traits. Here, we evaluate the performance of different approaches to meta-analysis in the presence of allelic heterogeneity. We simulate allelic heterogeneity scenarios in three populations and examine the performance of current approaches to the analysis of these data. We show that current approaches can detect only a small fraction of common frequency causal variants. We also find that for low-frequency variants with large effects (odds ratios 2–3), single-point tests have high power, but also high false-positive rates. P-value based meta-analysis of summary results from allele-matching locus-wide tests outperforms collapsing approaches. We conclude that current strategies for the combination of genetic association data in the presence of allelic heterogeneity are insufficiently powered.
机译:荟萃分析已被证明是遗传关联研究中的有用工具。等位基因异质性可能源于进行荟萃分析的人群之间的种族背景差异(例如,通过全基因组关联研究来寻找常见的频率变异),以及在同一功能单元中存在多个低频和罕见的相关变异兴趣(例如,在基因或调控区域内)。在全基因组和全基因组测序研究中,与复杂性状相关的研究中,后一种挑战将越来越重要。在这里,我们评估在等位基因异质性存在下进行荟萃分析的不同方法的性能。我们在三个种群中模拟等位基因异质性方案,并检查当前分析这些数据的方法的性能。我们表明,当前的方法只能检测到一小部分常见频率因果变量。我们还发现,对于影响较大的低频变量(奇数比为2-3),单点测试具有较高的功效,但也具有较高的假阳性率。基于等位基因匹配基因座测试的汇总结果的基于P值的荟萃分析优于折叠方法。我们得出结论,在等位基因异质性存在的情况下,目前用于遗传关联数据组合的策略的能力不足。

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