4.6 Article

Bioinformatics screening of biomarkers related to liver cancer

期刊

BMC BIOINFORMATICS
卷 22, 期 SUPPL 3, 页码 -

出版社

BMC
DOI: 10.1186/s12859-021-04411-1

关键词

Bioinformatics analysis; Differential expressed genes; PPI; Oncomine; Survival curve analysis

资金

  1. National Natural Science Foundation of China [11371174]

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This study proposed a new method to identify 6 key genes for early diagnosis and treatment of liver cancer through high-throughput expression microarray analysis. The identified key genes can help us better understand the pathogenesis of liver cancer and aid in the early diagnosis and treatment of the disease.
Background Liver cancer is a common malignant tumor in China, with high mortality. Its occurrence and development were thoroughly studied by high-throughput expression microarray, which produced abundant data on gene expression, mRNA quantification and the clinical data of liver cancer. However, the hub genes, which can be served as biomarkers for diagnosis and treatment of early liver cancer, are not well screened. Results Here we present a new method for getting 6 key genes, aiming to diagnose and treat the early liver cancer. We firstly analyzed the different expression microarrays based on TCGA database, and a total of 1564 differentially expressed genes were obtained, of which 1400 were up-regulated and 164 were down-regulated. Furthermore, these differentially expressed genes were studied by using GO and KEGG enrichment analysis, a PPI network was constructed based on the STRING database, and 15 hub genes were obtained. Finally, 15 hub genes were verified by applying the survival analysis method on Oncomine database, and 6 key genes were ultimately identified, including PLK1, CDC20, CCNB2, BUB1, MAD2L1 and CCNA2. The robustness analysis of four independent data sets verifies the accuracy of the key gene's classification of the data set. Conclusions Although there are complicated differences between cancer and normal cells in gene functions, cancer cells could be differentiated in case that a group of special genes expresses abnormally. Here we presented a new method to identify the 6 key genes for diagnosis and treatment of early liver cancer, and these key genes can help us understand the pathogenesis of liver cancer more deeply.

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