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Exploration of gene-gene interaction effects using entropy-based methods.

机译:使用基于熵的方法探索基因-基因相互作用的影响。

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摘要

Gene-gene interaction may play important roles in complex disease studies, in which interaction effects coupled with single-gene effects are active. Many interaction models have been proposed since the beginning of the last century. However, the existing approaches including statistical and data mining methods rarely consider genetic interaction models, which make the interaction results lack biological or genetic meaning. In this study, we developed an entropy-based method integrating two-locus genetic models to explore such interaction effects. We performed our method to simulated and real data for evaluation. Simulation results show that this method is effective to detect gene-gene interaction and, furthermore, it is able to identify the best-fit model from various interaction models. Moreover, our method, when applied to malaria data, successfully revealed negative epistatic effect between sickle cell anemia and alpha(+)-thalassemia against malaria.European Journal of Human Genetics (2008) 16, 229-235; doi:10.1038/sj.ejhg.5201921; published online 31 October 2007.
机译:基因-基因相互作用可能在复杂的疾病研究中发挥重要作用,在这种疾病中,相互作用效应与单基因效应相结合是活跃的。自上世纪初以来,已经提出了许多交互模型。然而,包括统计和数据挖掘方法在内的现有方法很少考虑遗传相互作用模型,这使得相互作用结果缺乏生物学或遗传意义。在这项研究中,我们开发了一种基于熵的方法,该方法结合了两个基因座的遗传模型来探索这种相互作用的影响。我们对模拟的和真实的数据执行了评估方法。仿真结果表明,该方法可有效地检测基因与基因的相互作用,并且能够从各种相互作用模型中确定最佳拟合模型。而且,当我们的方法应用于疟疾数据时,成功地揭示了镰状细胞性贫血和α(+)-地中海贫血之间对抗疟疾的负面上位效应。欧洲人类遗传学杂志(2008)16,229-235; doi:10.1038 / sj.ejhg.5201921;在线发布于2007年10月31日。

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