Esophageal squamous cell carcinoma (ESCC) is one of the most malignant gastrointestinal cancers and occurs at a high frequency rate in China and other Asian countries. Recently, several molecular markers were identified for predicting ESCC. Notwithstanding, additional prognostic markers, with a clear understanding of their underlying roles, are still required. Through bioinformatics, a graph-clustering method by DPClus was used to detect co-expressed modules. The aim was to identify a set of discriminating genes that could be used for predicting ESCC through graph-clustering and GO-term analysis. The results showed that CXCL12, CYP2C9, TGM3, MAL, S100A9, EMP-1 and SPRR3 were highly associated with ESCC development. In our study, all their predicted roles were in line with previous reports, whereby the assumption that a combination of meta-analysis, graph-clustering and GO-term analysis is effective for both identifying differentially expressed genes, and reflecting on their functions in ESCC.

译文

食管鳞状细胞癌(ESCC)是最恶性的胃肠道癌之一,在中国和其他亚洲国家以很高的频率发生。最近,鉴定了几种分子标志物来预测ESCC。尽管如此,仍然需要其他的预后指标,并清楚地了解其潜在作用。通过生物信息学,使用DPClus的图聚类方法检测共表达的模块。目的是确定一组可用于通过图聚类和GO项分析预测ESCC的区分基因。结果表明,CXCL12,CYP2C9,TGM3,MAL,S100A9,EMP-1和SPRR3与ESCC的发展高度相关。在我们的研究中,它们的所有预测作用均与以前的报告一致,因此,假设荟萃分析,图聚类和GO项分析相结合可有效识别差异表达的基因并反映其在ESCC中的功能。

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