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首页> 外文期刊>International Journal of Applied Mathematics & Statistics >An integrative method of mining genes related to complex disease like Clear Cell Renal Cell Carcinoma with mRNA microarray data
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An integrative method of mining genes related to complex disease like Clear Cell Renal Cell Carcinoma with mRNA microarray data

机译:利用mRNA微阵列数据综合挖掘与复杂疾病如透明细胞肾细胞癌相关的基因的方法

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The goal of genomics research is to describe the network of molecules and interactions between genes and disease processes in cells. Due to the structural of a network play a key role for deciphering the cellular function. Therefore, the analysis of the structure of gene networks for tissues with and without disease can provide better comprehending of the formation and development of disease on the molecular level. In this paper, the Wilcoxon rank-sum test method is carried out on gene expression profiles in kidney tissues with and without clear cell renal cell carcinoma (ccRCC) and to obtain candidate genes. Furthermore, mutual information networks of these genes are constructed. Base on the seven statistics of the two network, a new method to filter structural key genes is proposed that may have significant impacts on the development of diseases, and twenty two genes are selected as potential pathogenic key genes of ccRCC. Empirical studies on cancer show that they are cancer-related genes which respect the efficient of the method. At the same time, ten of these genes are closely related to the formation and development of ccRCC leaving the other genes open. Furthermore, we predict two pathways which may play an important role of development of ccRCC based on GO annotation. These predictions call for more empirical studies on the functions of the gene in clear cell renal cell carcinoma.
机译:基因组学研究的目的是描述分子的网络以及基因与细胞疾病过程之间的相互作用。由于网络的结构在解密蜂窝功能中起着关键作用。因此,对有或没有疾病的组织的基因网络结构的分析可以在分子水平上更好地理解疾病的形成和发展。本文采用Wilcoxon秩和检验方法对有无透明细胞肾细胞癌(ccRCC)的肾脏组织中的基因表达谱进行研究,并获得候选基因。此外,构建了这些基因的相互信息网络。基于这两个网络的七个统计数据,提出了一种对结构关键基因进行过滤的新方法,该方法可能对疾病的发展产生重大影响,并选择了22个基因作为ccRCC的潜在致病关键基因。对癌症的经验研究表明,它们是与癌症相关的基因,尊重该方法的有效性。同时,这些基因中的十个与ccRCC的形成和发展密切相关,而其他基因则处于开放状态。此外,我们基于GO注释预测了两种途径可能在ccRCC的发展中起重要作用。这些预测要求对该基因在透明细胞肾细胞癌中的功能进行更多的经验研究。

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