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Genetic Association Analysis and Meta-Analysis of Imputed SNPs in Longitudinal Studies

机译:纵向研究中估算SNPs的遗传关联分析和Meta分析

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摘要

In this paper we propose a new method to analyze time-to-event data in longitudinal genetic studies. This method address the fundamental problem of incorporating uncertainty when analyzing survival data and imputed single-nucleotide polymorphisms (SNPs) from genome-wide association studies (GWAS). Our method incorporates uncertainty in the likelihood function, the opposite of existing methods that incorporate the uncertainty in the design matrix. Through simulation studies and real data analyses, we show that our proposed method is unbiased and provides powerful results. We also show how combining results from different GWAS (meta-analysis) may lead to wrong results when effects are not estimated using our approach. The model is implemented in an R package that is designed to analyze uncertainty not only arising from imputed SNPs, but also from copy number variants.
机译:在本文中,我们提出了一种在纵向遗传研究中分析事件时间数据的新方法。该方法解决了分析生存数据和全基因组关联研究(GWAS)估算的单核苷酸多态性(SNP)时引入不确定性的基本问题。我们的方法在似然函数中包含了不确定性,与在设计矩阵中包含不确定性的现有方法相反。通过仿真研究和实际数据分析,我们证明了我们提出的方法是公正的,并提供了有力的结果。我们还展示了当使用我们的方法无法估计效果时,将来自不同GWAS(元分析)的结果合并可能导致错误的结果。该模型在R包中实施,该R包旨在分析不确定性,这些不确定性不仅是归因于估算的SNP,还包括拷贝数变异。

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