首页> 外文期刊>European journal of human genetics: EJHG >The interaction index, a novel information-theoretic metric for prioritizing interacting genetic variations and environmental factors.
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The interaction index, a novel information-theoretic metric for prioritizing interacting genetic variations and environmental factors.

机译:相互作用指数,一种用于区分相互作用的遗传变异和环境因素的新型信息理论度量。

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摘要

We developed an information-theoretic metric called the Interaction Index for prioritizing genetic variations and environmental variables for follow-up in detailed sequencing studies. The Interaction Index was found to be effective for prioritizing the genetic and environmental variables involved in GEI for a diverse range of simulated data sets. The metric was also evaluated for a 103-SNP Crohn's disease dataset and a simulated data set containing 9187 SNPs and multiple covariates that was modeled on a rheumatoid arthritis data set. Our results demonstrate that the Interaction Index algorithm is effective and efficient for prioritizing interacting variables for a diverse range of epidemiologic data sets containing complex combinations of direct effects, multiple GGI and GEI.
机译:我们开发了一种称为“相互作用指数”的信息理论量度,用于对遗传变异和环境变量进行优先排序,以便在详细的测序研究中进行跟踪。人们发现,对于各种模拟数据集,交互指数对于区分GEI涉及的遗传和环境变量是有效的。还针对103-SNP克罗恩病数据集和包含9187个SNP以及在类风湿性关节炎数据集上建模的多个协变量的模拟数据集评估了该指标。我们的结果表明,交互指数算法对于区分包含直接影响,多个GGI和GEI的复杂组合的多种流行病学数据集的交互变量是有效且高效的。

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