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基于人类信号网络识别具有更好分类性能的结肠癌风险模块。

Identifying colon cancer risk modules with better classification performance based on human signaling network.

作者信息

Qu Xiaoli, Xie Ruiqiang, Chen Lina, Feng Chenchen, Zhou Yanyan, Li Wan, Huang Hao, Jia Xu, Lv Junjie, He Yuehan, Du Youwen, Li Weiguo, Shi Yuchen, He Weiming

机构信息

College of Bioinformatics Science and Technology, Harbin Medical University, Harbin, Heilongjiang Province Postal Code: 150081, China.

Institute of Opto-electronics, Harbin Institute of Technology, Harbin, Heilongjiang Province Postal Code: 150080, China.

出版信息

Genomics. 2014 Oct;104(4):242-8. doi: 10.1016/j.ygeno.2013.11.002. Epub 2013 Nov 13.

Abstract

Identifying differences between normal and tumor samples from a modular perspective may help to improve our understanding of the mechanisms responsible for colon cancer. Many cancer studies have shown that signaling transduction and biological pathways are disturbed in disease states, and expression profiles can distinguish variations in diseases. In this study, we integrated a weighted human signaling network and gene expression profiles to select risk modules associated with tumor conditions. Risk modules as classification features by our method had a better classification performance than other methods, and one risk module for colon cancer had a good classification performance for distinguishing between normal/tumor samples and between tumor stages. All genes in the module were annotated to the biological process of positive regulation of cell proliferation, and were highly associated with colon cancer. These results suggested that these genes might be the potential risk genes for colon cancer.

摘要

从模块化角度识别正常样本与肿瘤样本之间的差异,可能有助于增进我们对结肠癌发病机制的理解。许多癌症研究表明,信号转导和生物学途径在疾病状态下会受到干扰,而表达谱能够区分疾病中的差异。在本研究中,我们整合了加权人类信号网络和基因表达谱,以选择与肿瘤状态相关的风险模块。我们的方法将风险模块作为分类特征,其分类性能优于其他方法,并且一个结肠癌风险模块在区分正常/肿瘤样本以及肿瘤分期方面具有良好的分类性能。该模块中的所有基因均被注释到细胞增殖正调控的生物学过程,并且与结肠癌高度相关。这些结果表明,这些基因可能是结肠癌的潜在风险基因。

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