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Identification of Novel Cancer-Related Genes with a Prognostic Role Using Gene Expression and Protein-Protein Interaction Network Data

机译:使用基因表达和蛋白质 - 蛋白质相互作用网络数据鉴定具有预后作用的新型癌症相关基因

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Early cancer diagnosis and prognosis prediction are necessary for cancer patients. Effective identification of cancer-related genes and biomarkers and survival prediction for cancer patients would facilitate personalized treatment of cancer patients. This study aimed to investigate a method for integrating data regarding gene expression and protein-protein interaction networks to identify cancer-related prognostic genes via random walk with restart algorithm and survival analysis. Known cancer-related genes in protein-protein interaction networks were considered seed genes, and the random walk algorithm was used to identify candidate cancer-related genes. Thereafter, using the univariant Cox regression model, gene expression data were screened to identify survival-related genes. Furthermore, candidate genes and survival-related genes were screened to identify cancer-related prognostic genes. Finally, the effectiveness of the method was verified through gene function analysis and survival prediction. The results indicate that the cancer-related genes can be considered prognostic cancer biomarkers and provide a basis for cancer diagnosis.
机译:癌症患者需要早期癌症诊断和预后预测。有效鉴定癌症相关的基因和生物标志物和癌症患者的存活预测将促进癌症患者的个性化治疗。该研究旨在探讨一体化关于基因表达和蛋白质 - 蛋白质相互作用网络的数据的方法,通过随机步行与重启算法和生存分析来鉴定癌症相关的预后基因。蛋白质 - 蛋白质相互作用网络中的已知癌症相关基因被认为是种子基因,并且随机步行算法用于鉴定候选癌症相关基因。此后,使用非变量COX回归模型,筛选基因表达数据以鉴定生存相关基因。此外,筛选候选基因和生存相关基因以鉴定癌症相关的预后基因。最后,通过基因函数分析和生存预测来验证该方法的有效性。结果表明,癌症相关基因可被视为预后癌症生物标志物,并为癌症诊断提供依据。

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