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Detecting association of rare variants by testing an optimally weighted combination of variants for quantitative traits in general families

机译:通过测试普通家庭中量化性状的最佳加权组合来检测稀有变异的关联

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Although next-generation sequencing technology allows sequencing the whole genome of large groups of individuals, the development of powerful statistical methods for rare variant association studies is still underway. Even though many statistical methods have been developed for mapping rare variants, most of these methods are for unrelated individuals only, whereas family data have been shown to improve power to detect rare variants. The majority of the existing methods for unrelated individuals is essentially testing the effect of a weighted combination of variants with different weighting schemes. The performance of these methods depends on the weights being used. Recently, researchers proposed a test for Testing the effect of an Optimally Weighted combination of variants (TOW) for unrelated individuals. In this article, we extend our previously developed TOW for unrelated individuals to family-based data and propose a novel test for Testing the effect of an Optimally Weighted combination of variants for Family-based designs (TOW-F). The optimal weights are analytically derived. The results of extensive simulation studies show that TOW-F is robust to population stratification in a wide range of population structures, is robust to the direction and magnitude of the effects of causal variants, and is relatively robust to the percentage of neutral variants.
机译:尽管下一代测序技术可以对一大群人的整个基因组进行测序,但仍在为稀有变异关联研究开发强大的统计方法。尽管已开发出许多统计方法来绘制稀有变异,但这些方法大多数仅用于不相关的个​​体,而家庭数据已显示出提高检测稀有变异的能力。无关个体的大多数现有方法基本上是在测试具有不同加权方案的变体的加权组合的效果。这些方法的性能取决于所使用的权重。最近,研究人员提出了一项测试,旨在测试不相关个体的最佳加权变体组合(TOW)的效果。在本文中,我们将以前开发的针对无关个体的TOW扩展到基于家族的数据,并提出了一种新颖的测试,用于测试基于家族的设计(TOW-F)的最佳加权变体组合的效果。最优权重通过分析得出。大量模拟研究的结果表明,TOW-F对广泛的人口结构中的人口分层具有鲁棒性,对因果变体的影响的方向和大小具有鲁棒性,对中性变体的百分比也具有鲁棒性。

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