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Computational analysis of gene-gene interactions using multifactor dimensionality reduction.

机译:使用多维度降维的基因-基因相互作用的计算分析。

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摘要

Understanding the relationship between DNA sequence variations and biologic traits is expected to improve the diagnosis, prevention and treatment of common human diseases. Success in characterizing genetic architecture will depend on our ability to address nonlinearities in the genotype-to-phenotype mapping relationship as a result of gene-gene interactions, or epistasis. This review addresses the challenges associated with the detection and characterization of epistasis. A novel strategy known as multifactor dimensionality reduction that was specifically designed for the identification of multilocus genetic effects is presented. Several case studies that demonstrate the detection of gene-gene interactions in common diseases such as atrial fibrillation, Type II diabetes and essential hypertension are also discussed.
机译:理解DNA序列变异与生物学特性之间的关系有望改善常见人类疾病的诊断,预防和治疗。遗传结构表征的成功取决于我们解决因基因-基因相互作用或上位性而导致的基因型-表型作图关系中的非线性的能力。这项审查解决与上皮的检测和表征相关的挑战。提出了一种称为多因素降维的新颖策略,该策略专门用于识别多基因座遗传效应。还讨论了一些案例研究,这些案例证明了在常见疾病(如心房颤动,II型糖尿病和原发性高血压)中检测基因-基因相互作用。

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