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首页> 外文期刊>Behavior Genetics: An International Journal Devoted to Research in the Inheritance of Behavior in Animals and Man >Adaptive SNP-Set Association Testing in Generalized Linear Mixed Models with Application to Family Studies
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Adaptive SNP-Set Association Testing in Generalized Linear Mixed Models with Application to Family Studies

机译:广义线性混合模型中的自适应SNP集合测试,应用于家庭研究

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In genome-wide association studies (GWAS), it has been increasingly recognized that, as a complementary approach to standard single SNP analyses, it may be beneficial to analyze a group of functionally related SNPs together. Among the existent population-based SNP-set association tests, two adaptive tests, the aSPU test and the aSPUpath test, offer a powerful and general approach at the gene- and pathway-levels by data-adaptively combining the results across multiple SNPs (and genes) such that high statistical power can be maintained across a wide range of scenarios. We extend the aSPU and the aSPUpath test to familial data under the framework of the generalized linear mixed models (GLMMs), which can take account of both subject relatedness and possible population structure. As in population-based GWAS, the proposed aSPU and aSPUpath tests require only fitting a single and common GLMM (under the null hypothesis) for all the SNPs, thus are computationally efficient and feasible for large GWAS data. We illustrate our approaches in identifying genes and pathways associated with alcohol dependence in the Minnesota Twin Family Study. The aSPU test detected a gene associated with the trait, in contrast to none by the standard single SNP analysis. Our aSPU test also controlled Type I errors satisfactorily in a small simulation study. We provide R code to conduct the aSPU and aSPUpath tests for familial and other correlated data.
机译:在全基因组协会研究(GWAS)中,越来越认识到,作为标准单个SNP分析的互补方法,将一组功能相关的SNP分析在一起可能是有益的。在存在的基于人口的SNP集合测试中,通过数据适应地将结果与多个SNP(以及基因)可以在各种场景中保持高统计力量。我们将Aspu和Aspupath测试扩展到广义线性混合模型(GLMMS)的框架下的家庭数据,这可以考虑所有相关的相关性和可能的​​人口结构。与基于人口的GWA一样,所提出的ASPU和AspaHath测试只需要为所有SNP拟合单个和常见的GLMM(下面的NULL假设),因此对于大GWAS数据来说是计算的高效和可行的。我们说明了我们在明尼苏达州双胞胎学习中鉴定与酒精依赖相关的基因和途径的方法。 ASPU检测检测与特征相关的基因,与标准单个SNP分析无关。我们的ASPU测试还在一个小型模拟研究中令人满意地控制I型错误。我们提供R码来进行家庭和其他相关数据的ASPU和Aspupath测试。

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