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SYMPHONY an information-theoretic method for gene–gene and gene–environment interaction analysis of disease syndromes

机译:SYMPHONY一种用于疾病综合症的基因-基因和基因-环境相互作用分析的信息论方法

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摘要

We develop an information-theoretic method for gene–gene (GGI) and gene–environmental interactions (GEI) analysis of syndromes, defined as a phenotype vector comprising multiple quantitative traits (QTs). The K-way interaction information (KWII), an information-theoretic metric, was derived for multivariate normal distributed phenotype vectors. The utility of the method was challenged with three simulated data sets, the Genetic Association Workshop-15 (GAW15) rheumatoid arthritis data set, a high-density lipoprotein (HDL) and atherosclerosis data set from a mouse QT locus study, and the 1000 Genomes data. The dependence of the KWII on effect size, minor allele frequency, linkage disequilibrium, population stratification/admixture, as well as the power and computational time requirements of the novel method was systematically assessed in simulation studies. In these studies, phenotype vectors containing two and three constituent multivariate normally distributed QTs were used and the KWII was found to be effective at detecting GEI associated with the phenotype. High KWII values were observed for variables and variable combinations associated with the syndrome phenotype compared with uninformative variables not associated with the phenotype. The KWII values for the phenotype-associated combinations increased monotonically with increasing effect size values. The KWII also exhibited utility in simulations with non-linear dependence between the constituent QTs. Analysis of the HDL and atherosclerosis data set indicated that the simultaneous analysis of both phenotypes identified interactions not detected in the analysis of the individual traits. The information-theoretic approach may be useful for non-parametric analysis of GGI and GEI of complex syndromes.
机译:我们开发了一种信息理论方法,用于对症候群进行基因-基因(GGI)和基因-环境相互作用(GEI)分析,定义为包含多个定量特征(QT)的表型载体。对于多元正态分布表型向量,推导了K-way交互信息(KWII),这是一种信息理论指标。该方法的实用性受到三个模拟数据集的挑战:遗传协会Workshop-15(GAW15)类风湿性关节炎数据集,来自小鼠QT基因座研究的高密度脂蛋白(HDL)和动脉粥样硬化数据集以及1000个基因组数据。在模拟研究中系统地评估了KWII对效应大小,次要等位基因频率,连锁不平衡,种群分层/混合以及新方法的功效和计算时间要求的依赖性。在这些研究中,使用包含两个和三个组成的多元正态分布QT的表型载体,发现KWII可有效检测与表型相关的GEI。与与表型无关的非信息性变量相比,与综合征表型相关的变量和变量组合具有较高的KWII值。与表型相关的组合的KWII值随着效应大小值的增加而单调增加。 KWII在组成QT之间具有非线性相关性的仿真中也显示出实用性。对HDL和动脉粥样硬化数据集的分析表明,对两种表型的同时分析确定了在个别性状分析中未检测到的相互作用。信息理论方法可能对复杂综合征的GGI和GEI的非参数分析有用。

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