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Identification of key modules and genes associated with breast cancer prognosis using WGCNA and ceRNA network analysis

机译:使用WGCNA和Cerna网络分析鉴定与乳腺癌预后相关的关键模块和基因

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摘要

Breast cancer is one of the leading causes of cancer-associated mortality in women worldwide and has become a major public health problem. Although the definitive cause of breast cancer is not known, many genes sensitive to breast cancer have been detected using advanced technologies. Our study identified 3301 differentially expressed lncRNAs and mRNAs between tumor and normal samples from The Cancer Genome Atlas database. Based on the gene expression analysis and clinical traits as well as weighted gene co-expression network analysis, the co-expression Brown module was found to be key for breast cancer prognosis. A total of 453 genes in the Brown module were used for functional enrichment, protein-protein interaction analysis, lncRNA-miRNA-mRNA ceRNA network, and lncRNA-RNA binding protein-mRNA network construction. GRM4, SSTR2, PARD6B, PRR15, COX6C, and lncRNA DSCAM-AS1 were the hub genes according to protein-protein interaction, lncRNA-miRNA-mRNA and lncRNA-RNA binding protein-mRNA network. Their high expression was found to be correlated with breast cancer development, according to multiple databases. In conclusion, this study provides a framework of the co-expression gene modules of breast cancer and identifies several important biomarkers in breast cancer development and prognosis.
机译:乳腺癌是全世界癌症相关死亡率的主要原因之一,已成为一个主要的公共卫生问题。虽然乳腺癌的最终原因未知,但使用先进技术检测了许多对乳腺癌敏感的基因。我们的研究确定了3301型差异表达的LNCRNA和来自癌症基因组Atlas数据库的肿瘤和正常样本之间的mRNA。基于基因表达分析和临床特征以及加权基因共表达网络分析,发现共表达棕色模块是乳腺癌预后的关键。棕色模块中共有453个基因用于功能性富集,蛋白质 - 蛋白质相互作用分析,LNCRNA-miRNA-mRNA Cerna网络和LNCRNA-RNA结合蛋白-mRNA网络构建。 GRM4,SSTR2,PARD6B,PRR15,COX6C和LNCRNA DSC-AS1是根据蛋白质 - 蛋白质相互作用,LNCRNA-miRNA-mRNA和LNCRNA-RNA结合蛋白-mRNA网络的轮毂基因。根据多个数据库,发现它们的高表达与乳腺癌发育相关。总之,本研究提供了乳腺癌的共表达基因模块的框架,并鉴定了乳腺癌发育和预后的几个重要生物标志物。

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