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Network-based method for mining novel HPV infection related genes using random walk with restart algorithm

机译:用重启算法随机散步采矿新型HPV感染相关基因的基于网络的方法

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摘要

The human papillomavirus (HPV), a common virus that infects the reproductive tract, may lead to malignant changes within the infection area in certain cases and is directly associated with such cancers as cervical cancer, anal cancer, and vaginal cancer. Identification of novel HPV infection related genes can lead to a better understanding of the specific signal pathways and cellular processes related to HPV infection, providing information for the development of more efficient therapies. In this study, several novel HPV infection related genes were predicted by a computation method based on the known genes involved in HPV infection from HPVbase. This method applied the algorithm of random walk with restart (RWR) to a protein-protein interaction (PPI) network. The candidate genes were further filtered by the permutation and association tests. These steps eliminated genes occupying special positions in the PPI network and selected key genes with strong associations to known HPV infection related genes based on the interaction confidence and functional similarity obtained from published databases, such as STRING, gene ontology (GO) terms and KEGG pathways. Our study identified 104 novel HPV infection related genes, a number of which were confirmed to relate to the infection processes and complications of HPV infection, as reported in the literature. These results demonstrate the reliability of our method in identifying HPV infection related genes.
机译:人乳头瘤病毒(HPV)是一种感染生殖道的常见病毒,可能在某些情况下导致感染区域内的恶性变化,并且与宫颈癌,肛门癌和阴道癌等癌症直接相关。新型HPV感染相关基因的鉴定可以更好地了解与HPV感染有关的特定信号途径和细胞过程,为开发更有效的疗法提供信息。在该研究中,基于来自HPVBase的HPV感染中的已知基因来预测几种新的HPV感染相关基因。该方法用重启(RWR)对蛋白质 - 蛋白质相互作用(PPI)网络的随机步行算法。通过排列和结合测试进一步过滤候选基因。这些步骤消除了在PPI网络中占用特殊位置的基因,并根据从已发表的数据库获得的相互作用置信度和功能相似性,选择与已知的HPV感染相关基因有关的关联基因,例如字符串,基因本体论(GO)术语和KEGG路径。我们的研究确定了104个新型HPV感染相关基因,其中一些被证实与文献中报道的HPV感染的感染过程和并发症有关。这些结果表明了我们在鉴定HPV感染相关基因的方法的可靠性。

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