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Quantitative Allelic Test - a Fast Test for Very Large Association Studies

机译:定量等位基因测试-大型关联研究的快速测试

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摘要

Advances in high throughput technology have enabled the generation of unprecedented amounts of genomic data (e.g., next generation sequence data, transcriptomics, metabolomics, and proteomics), which promises to unravel the genetic architecture of complex traits. These discoveries may lead to novel therapeutic targets, guide disease prevention, and enable personalized medicine. However, the pace of data generation surpasses the ability to process and analyze the vast amounts of data. For example, in a typical study of transcription regulation, the relationship between more than 1 million genetic variants and ten thousand transcript levels are explored, requiring tens of billions of tests. In order to address this problem, we propose a fast, accurate, and robust method that can assess the significance of associations between quantitative phenotypes and genotypes. The method is an extension of the allelic test commonly used in case-control studies for the analysis of quantitative traits. We show the asymptotic equivalence of the proposed test to linear regression results. We also reduce a generalized linear regression problem to the comparison of two groups, which can handle non-normal and survival time phenotypes.
机译:高通量技术的进步使人们能够生成数量空前的基因组数据(例如,下一代序列数据,转录组学,代谢组学和蛋白质组学),这有望揭开复杂性状的遗传结构。这些发现可能会导致新的治疗目标,指导疾病预防并启用个性化药物。但是,数据生成的速度超过了处理和分析大量数据的能力。例如,在典型的转录调控研究中,探索了超过一百万个遗传变异与一万个转录本水平之间的关系,需要进行数百亿次测试。为了解决这个问题,我们提出了一种快速,准确和鲁棒的方法,可以评估定量表型和基因型之间关联的重要性。该方法是在病例对照研究中通常用于定量特征分析的等位基因测试的扩展。我们显示了拟议的测试与线性回归结果的渐进等效性。我们也将广义线性回归问题简化为两组的比较,可以处理非正常和生存时间表型。

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