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Combining effects from rare and common genetic variants in an exome-wide association study of sequence data

机译:在序列数据的全基因组关联研究中结合稀有和常见遗传变异的影响

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Recent breakthroughs in next-generation sequencing technologies allow cost-effective methods for measuring a growing list of cellular properties, including DNA sequence and structural variation. Next-generation sequencing has the potential to revolutionize complex trait genetics by directly measuring common and rare genetic variants within a genome-wide context. Because for a given gene both rare and common causal variants can coexist and have independent effects on a trait, strategies that model the effects of both common and rare variants could enhance the power of identifying disease-associated genes. To date, little work has been done on integrating signals from common and rare variants into powerful statistics for finding disease genes in genome-wide association studies. In this analysis of the Genetic Analysis Workshop 17 data, we evaluate various strategies for association of rare, common, or a combination of both rare and common variants on quantitative phenotypes in unrelated individuals. We show that the analysis of common variants only using classical approaches can achieve higher power to detect causal genes than recently proposed rare variant methods and that strategies that combine association signals derived independently in rare and common variants can slightly increase the power compared to strategies that focus on the effect of either the rare variants or the common variants.
机译:下一代测序技术的最新突破允许使用经济有效的方法来测量越来越多的细胞特性,包括DNA序列和结构变异。通过直接测量全基因组范围内常见和稀有的遗传变异,下一代测序有可能彻底改变复杂性状遗传学。因为对于给定的基因,稀有和常见因果变体都可以共存,并且对性状具有独立的影响,因此对常见和稀有变体的影响进行建模的策略可以增强识别疾病相关基因的能力。迄今为止,在将常见和罕见变体的信号整合到用于在全基因组关联研究中寻找疾病基因的强大统计数据中所做的工作很少。在对遗传分析研讨会17数据的分析中,我们评估了在无关个体中定量表型与稀有,常见或稀有和常见变体组合相关联的各种策略。我们显示,仅使用经典方法进行的常见变体分析,才能比最近提出的稀有变体方法具有更高的检测因果基因的能力,并且与集中关注的策略相比,将在稀有和常见变体中独立衍生的关联信号进行组合的策略可以稍微提高功效对罕见变体或常见变体的影响。

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