Identification of candidate aberrantly methylated and differentially expressed genes in Esophageal squamous cell carcinoma

小桶 基因 生物 DNA微阵列 基因表达 甲基化 计算生物学 DNA甲基化 细胞周期蛋白依赖激酶1 遗传学 基因表达谱 数据库 细胞周期 生物信息学 癌症研究 转录组 计算机科学
作者
Baoai Han,Xiuping Yang,Davood K. Hosseini,Po Zhang,Ya Zhang,Jintao Yu,Shan Chen,Fan Zhang,Tao Zhou,Haiying Sun
出处
期刊:Scientific Reports [Nature Portfolio]
卷期号:10 (1): 9735-9735 被引量:28
标识
DOI:10.1038/s41598-020-66847-4
摘要

Aberrant methylated genes (DMGs) play an important role in the etiology and pathogenesis of esophageal squamous cell carcinoma (ESCC). In this study, we aimed to integrate three cohorts profile datasets to ascertain aberrant methylated-differentially expressed genes and pathways associated with ESCC by comprehensive bioinformatics analysis. We downloaded data of gene expression microarrays (GSE20347, GSE38129) and gene methylation microarrays (GSE52826) from the Gene Expression Omnibus (GEO) database. Aberrantly differentially expressed genes (DEGs) were obtained by GEO2R tool. The David database was then used to perform Gene ontology (GO) analysis and Kyoto Encyclopedia of Gene and Genome pathway enrichment analyses on selected genes. STRING and Cytoscape software were used to construct a protein-protein interaction (PPI) network, then the modules in the PPI networks were analyzed with MCODE and the hub genes chose from the PPI networks were verified by Oncomine and TCGA database. In total, 291 hypomethylation-high expression genes and 168 hypermethylation-low expression genes were identified at the screening step, and finally found six mostly changed hub genes including KIF14, CDK1, AURKA, LCN2, TGM1, and DSG1. Pathway analysis indicated that aberrantly methylated DEGs mainly associated with the P13K-AKT signaling, cAMP signaling and cell cycle process. After validation in multiple databases, most hub genes remained significant. Patients with high expression of AURKA were associated with shorter overall survival. To summarize, we have identified six feasible aberrant methylated-differentially expressed genes and pathways in ESCC by bioinformatics analysis, potentially providing valuable information for the molecular mechanisms of ESCC. Our data combined the analysis of gene expression profiling microarrays and gene methylation profiling microarrays, simultaneously, and in this way, it can shed a light for screening and diagnosis of ESCC in future.
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