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MCM-test: a fuzzy-set-theory-based approach to differential analysis of gene pathways

机译:mCm检验:基于模糊集理论的基因途径差异分析方法

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摘要

AbstractBackgroundGene pathway can be defined as a group of genes that interact with each other to perform some biological processes. Along with the efforts to identify the individual genes that play vital roles in a particular disease, there is a growing interest in identifying the roles of gene pathways in such diseases.ResultsThis paper proposes an innovative fuzzy-set-theory-based approach, Multi-dimensional Cluster Misclassification test (MCM-test), to measure the significance of gene pathways in a particular disease. Experiments have been conducted on both synthetic data and real world data. Results on published diabetes gene expression dataset and a list of predefined pathways from KEGG identified OXPHOS pathway involved in oxidative phosphorylation in mitochondria and other mitochondrial related pathways to be deregulated in diabetes patients. Our results support the previously supported notion that mitochondrial dysfunction is an important event in insulin resistance and type-2 diabetes.ConclusionOur experiments results suggest that MCM-test can be successfully used in pathway level differential analysis of gene expression datasets. This approach also provides a new solution to the general problem of measuring the difference between two groups of data, which is one of the most essential problems in most areas of research.
机译:AbstractBackgroundGene途径可以定义为互相相互作用以执行某些生物学过程的一组基因。随着努力确定在特定疾病中起关键作用的单个基因的努力,人们越来越感兴趣地确定基因途径在此类疾病中的作用。结果本文提出了一种创新的基于模糊集理论的方法,即三维簇错误分类测试(MCM-test),用于测量特定疾病中基因途径的重要性。已经对合成数据和真实世界数据进行了实验。公布的糖尿病基因表达数据集的结果和KEGG的预定义途径列表确定了糖尿病患者中线粒体氧化磷酸化所涉及的OXPHOS途径和其他与线粒体相关的途径需要解除管制。我们的结果支持了以前支持的观念,即线粒体功能障碍是胰岛素抵抗和2型糖尿病的重要事件。结论我们的实验结果表明,MCM-test可成功用于基因表达数据集的途径水平差异分析。这种方法还为解决测量两组数据之间差异的一般问题提供了一种新的解决方案,这是大多数研究领域中最重要的问题之一。

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