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首页> 外文期刊>Epigenetics: official journal of the DNA Methylation Society >Imputation of missing covariate values in epigenome-wide analysis of DNA methylation data
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Imputation of missing covariate values in epigenome-wide analysis of DNA methylation data

机译:表观基因组范围的DNA甲基化数据分析中缺少协变量值的估算

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摘要

DNA methylation is a widely studied epigenetic mechanism and alterations in methylation patterns may be involved in the development of common diseases. Unlike inherited changes in genetic sequence, variation in site-specific methylation varies by tissue, developmental stage, and disease status, and may be impacted by aging and exposure to environmental factors, such as diet or smoking. These non-genetic factors are typically included in epigenome-wide association studies (EWAS) because they may be confounding factors to the association between methylation and disease. However, missing values in these variables can lead to reduced sample size and decrease the statistical power of EWAS. We propose a site selection and multiple imputation (MI) method to impute missing covariate values and to perform association tests in EWAS. Then, we compare this method to an alternative projection-based method. Through simulations, we show that the MI-based method is slightly conservative, but provides consistent estimates for effect size. We also illustrate these methods with data from the Atherosclerosis Risk in Communities (ARIC) study to carry out an EWAS between methylation levels and smoking status, in which missing cell type compositions and white blood cell counts are imputed.
机译:DNA甲基化是广泛研究的表观遗传机制,甲基化模式的改变可能与常见疾病的发展有关。与遗传序列的遗传变化不同,位点特异性甲基化的变化随组织,发育阶段和疾病状况而异,并且可能会受到衰老和暴露于饮食或吸烟等环境因素的影响。这些非遗传因素通常包括在表观基因组范围的关联研究(EWAS)中,因为它们可能是甲基化与疾病之间关联的混杂因素。但是,这些变量中的值缺失会导致样本数量减少并降低EWAS的统计能力。我们提出一种站点选择和多重插补(MI)方法,以插补缺失的协变量值并在EWAS中执行关联测试。然后,我们将该方法与基于投影的替代方法进行比较。通过仿真,我们表明基于MI的方法稍微保守一些,但是可以提供一致的效果量估计值。我们还使用社区动脉粥样硬化风险(ARIC)研究中的数据对这些方法进行了说明,以在甲基化水平和吸烟状况之间进行EWAS,其中估算了缺失的细胞类型组成和白细胞计数。

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