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Impact of genotyping errors on statistical power of association tests in genomic analyses: A case study

机译:基因分型错误对基因组分析中关联测试统计能力的影响:一个案例研究

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摘要

A key step in genomic studies is to assess high throughput measurements across millions of markers for each participant’s DNA, either using microarrays or sequencing techniques. Accurate genotype calling is essential for downstream statistical analysis of genotype-phenotype associations, and next generation sequencing (NGS) has recently become a more common approach in genomic studies. How the accuracy of variant calling in NGS-based studies affects downstream association analysis has not, however, been studied using empirical data in which both microarrays and NGS were available. In this article, we investigate the impact of variant calling errors on the statistical power to identify associations between single nucleotides and disease, and on associations between multiple rare variants and disease. Both differential and nondifferential genotyping errors are considered. Our results show that the power of burden tests for rare variants is strongly influenced by the specificity in variant calling, but is rather robust with regard to sensitivity. By using the variant calling accuracies estimated from a substudy of a Cooperative Studies Program project conducted by the Department of Veterans Affairs, we show that the power of association tests is mostly retained with commonly adopted variant calling pipelines. An R package, GWAS.PC, is provided to accommodate power analysis that takes account of genotyping errors ().
机译:基因组研究的关键步骤是使用微阵列或测序技术,评估每位参与者DNA的数百万个标记的高通量测量结果。准确的基因型调用对于基因型-表型关联的下游统计分析是必不可少的,并且下一代测序(NGS)最近已成为基因组研究中更为普遍的方法。但是,尚未使用使用微阵列和NGS均可用的经验数据研究基于NGS的研究中变异调用的准确性如何影响下游关联分析。在本文中,我们研究了变异调用错误对统计能力的影响,以鉴定单个核苷酸与疾病之间的关联以及对多种罕见变异与疾病之间的关联。差分和非差分基因分型误差均被考虑。我们的结果表明,对罕见变体进行负荷测试的能力在很大程度上受到变体调用特异性的影响,但在敏感性方面却相当强大。通过使用由退伍军人事务部进行的合作研究计划项目的子研究估计的变体调用准确性,我们显示了关联测试的功能大部分保留在常用的变体调用管道中。提供了R包GWAS.PC,以适应考虑了基因分型错误()的功率分析。

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