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首页> 外文期刊>International journal of data mining and bioinformatics >Gene-gene interaction analysis for quantitative trait using cluster-based multifactor dimensionality reduction method
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Gene-gene interaction analysis for quantitative trait using cluster-based multifactor dimensionality reduction method

机译:基于基于簇的多因素维度减少方法的定量性状的基因 - 基因相互作用分析

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摘要

With recent advances in high-throughput genotyping techniques, many genome-wide association studies have been conducted to understand the relationship between genes and complex diseases. Though single SNP analysis is common for many genetic studies, this approach has a limitation in explaining genetic changes in complex diseases. Most complex diseases cannot be explained by a single gene mutation, and lack of success in many genetic studies could be attributed to gene-gene interactions. Although various methods have been developed to identify gene-gene interactions for binary traits, few statistical methods are currently available for determining the genetic interactions associated with quantitative traits. To address this problem, we propose CL-MDR method. It is a modified version of multifactor dimensionality reduction for quantitative traits. The proposed method was examined by simulation studies, which showed that CL-MDR successfully identified interactions associated with quantitative traits. We have also applied our approach to a Korean GWAS data for illustration.
机译:随着近期高通量基因分型技术的进展,已经进行了许多基因组关联研究以了解基因与复杂疾病之间的关系。虽然单一SNP分析对于许多遗传学研究常见,但这种方法在解释复杂疾病的遗传变化方面具有限制。最复杂的疾病不能通过单一基因突变解释,许多遗传研究中缺乏成功可能归因于基因 - 基因相互作用。尽管已经开发了各种方法以鉴定二元特征的基因 - 基因相互作用,但目前有很少的统计方法用于确定与定量性状相关的遗传相互作用。为了解决这个问题,我们提出了CL-MDR方法。它是定量性状的多重吸引力维度降低的修改版本。通过模拟研究检测所提出的方法,其显示CL-MDR成功地确定了与定量性状相关的相互作用。我们还将我们的方法应用于韩国GWAS数据进行插图。

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