A gene link-based method for identifying differential gene pathways

Zirui Zhang, Ke Chen, Hong-Qiang Wang
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Abstract

Pathway analysis plays an important role in exploring underlying connections between genomic data and complex diseases. In this paper, we propose a gene link-based method for identification of differentially expressed gene pathways. By viewing gene links in a pathway as a Markov chain, the proposed method first develops a gene link Markov chain model (MCM) and devises a Markov chain model-based classification rule to measure the biological importance of a gene link. Then, the expression difference of a pathway is estimated based on all the gene links in the pathway using the gene link MCM. The use of gene links, instead of individual genes, allows for exploring pathway topology that is crucial to pathway activity in cells. Results on two real-world gene expression data sets demonstrate that the effectiveness and efficiency of the proposed method in identifying differential gene pathways.
基于基因链接的鉴别差异基因通路的方法
途径分析在探索基因组数据与复杂疾病之间的潜在联系方面发挥着重要作用。在本文中,我们提出了一种基于基因链接的方法来识别差异表达的基因通路。该方法将通路中的基因链接视为一条马尔可夫链,首先建立了基因链接马尔可夫链模型(MCM),并设计了基于马尔可夫链模型的分类规则来衡量基因链接的生物学重要性。然后,利用基因链接MCM,基于该通路中所有的基因链接来估计该通路的表达差异。使用基因链接,而不是单个基因,可以探索对细胞中通路活性至关重要的通路拓扑。两个真实基因表达数据集的结果证明了该方法在识别差异基因通路方面的有效性和效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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