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Identification of candidate target genes for endometrial cancer such as ANO1 using weighted gene co-expression network analysis

机译:使用加权基因共表达网络分析鉴定子宫内膜癌的候选靶基因例如ANO1

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摘要

Network-based systems biology has become an important method for analysis of high-throughput gene expression data and gene function mining. The aim of the present study was to implement a weighted gene co-expression network analysis to screen genes that were significantly correlated with the clinical phenotype of endometrial cancer based on data from The Cancer Genome Atlas. By using the function ‘pickSoftThreshold’ in R software, the optimum soft thresholding power was determined to be 4. Subsequently, a total of 2,414 expressed genes were identified among 19,791 genes from 506 samples, which were divided into 24 modules according to the different expression patterns. After analyzing the correlation between the gene expression in these 24 modules and the clinical phenotype of endometrial cancer, the anoctamin 1 (ANO1) gene was selected for further analysis. The Chi-squared test indicated that ANO1 was significantly associated with age (P=0.047), histological type (P<0.001), clinical stage (P<0.001), pathological grade (P<0.001) and positive peritoneal washing (P=0.001) of endometrial carcinoma. Kaplan-Meier survival analysis revealed that a high level of ANO1 was significantly associated with a good prognosis for endometrial cancer patients. Univariate and multivariate Cox regression analysis indicated that ANO1 is an independent prognostic factor in endometrial cancer. Further characterization of the most relevant module containing ANO1 with the database for annotation, visualization and integrated discovery tool suggested that ANO1 is involved in various pathways, including metabolic pathways. The present study suggests that ANO1 may be a potential marker for good prognosis in endometrial cancer.
机译:基于网络的系统生物学已成为分析高通量基因表达数据和基因功能挖掘的重要方法。本研究的目的是基于癌症基因组图谱的数据,进行加权基因共表达网络分析,以筛选与子宫内膜癌临床表型显着相关的基因。通过使用R软件中的函数“ pickSoftThreshold”,确定最佳的软阈值能力为4。随后,从506个样本的19,791个基因中鉴定出总共2,414个表达基因,根据表达的不同将其分为24个模块模式。在分析了这24个模块中的基因表达与子宫内膜癌的临床表型之间的相关性之后,选择了Octamin 1(ANO1)基因进行进一步分析。卡方检验表明,ANO1与年龄(P = 0.047),组织学类型(P <0.001),临床分期(P <0.001),病理学分级(P <0.001)和腹膜冲洗阳性(P = 0.001)显着相关。子宫内膜癌。 Kaplan-Meier生存分析表明,高水平的ANO1与子宫内膜癌患者的良好预后显着相关。单因素和多因素Cox回归分析表明ANO1是子宫内膜癌的独立预后因素。包含ANO1的最相关模块以及用于注释,可视化和集成发现工具的数据库的进一步表征表明,ANO1涉及各种途径,包括代谢途径。本研究表明,ANO1可能是子宫内膜癌预后良好的潜在标志。

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