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Assessing the impact of missing genotype data in rare variant association analysis

机译:在稀有变异关联分析中评估缺失基因型数据的影响

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Human genome resequencing technologies are becoming ever more affordable and provide a valuable source of data about rare genetic variants in the human genome. Such rare variation may play an important role in explaining the missing heritability of complex human traits. We implement an existing method for analyzing rare variants by testing for association with the mutational load across genes. In this study, we make use of simulated data from the Genetic Analysis Workshop 17 to assess the power of this approach to detect association with simulated quantitative and dichotomous phenotypes and to evaluate the impact of missing genotypes on the power of the analysis. According to our results, the mutational load based rare variant analysis method is relatively robust to call-rate and is adequately powered for genome-wide association analysis.
机译:人类基因组重测序技术变得越来越便宜,并提供了有关人类基因组中罕见遗传变异的有价值的数据来源。这种罕见的变异可能在解释复杂的人类特征缺失的遗传力中起重要作用。我们通过测试与跨基因突变负载的关联性,实施了一种用于分析稀有变体的现有方法。在这项研究中,我们利用来自遗传分析研讨会17的模拟数据来评估这种方法的功效,以检测与模拟的定量和二分表型的关联,并评估缺失基因型对分析功效的影响。根据我们的结果,基于突变负荷的稀有变异分析方法相对于呼叫率相对稳定,并且有足够的能力进行全基因组关联分析。

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