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A dynamic model for genome-wide association studies

机译:用于全基因组关联研究的动态模型

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Although genome-wide association studies (GWAS) are widely used to identify the genetic and environmental etiology of a trait, several key issues related to their statistical power and biological relevance have remained unexplored. Here, we describe a novel statistical approach, called functional GWAS or fGWAS, to analyze the genetic control of traits by integrating biological principles of trait formation into the GWAS framework through mathematical and statistical bridges. fGWAS can address many fundamental questions, such as the patterns of genetic control over development, the duration of genetic effects, as well as what causes developmental trajectories to change or stop changing. In statistics, fGWAS displays increased power for gene detection by capitalizing on cumulative phenotypic variation in a longitudinal trait over time and increased robustness for manipulating sparse longitudinal data.
机译:尽管全基因组关联研究(GWAS)被广泛用于鉴定性状的遗传和环境病因学,但与它们的统计能力和生物学相关性有关的几个关键问题仍待探索。在这里,我们描述了一种新颖的统计方法,称为功能GWAS或fGWAS,通过通过数学和统计桥梁将特征形成的生物学原理整合到GWAS框架中来分析特征的遗传控制。 fGWAS可以解决许多基本问题,例如对发育进行遗传控制的模式,遗传效应的持续时间以及导致发育轨迹改变或停止改变的原因。在统计中,fGWAS通过利用纵向性状随时间的累积表型变化而显示出增强的基因检测能力,并提高了处理稀疏纵向数据的鲁棒性。

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