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Prediction of therapeutic mechanisms of tripterygium wilfordii in rheumatoid arthritis using text mining and network-based analysis

机译:用文本挖掘和基于网络分析预测逆线Wilfordii在类风湿性关节炎中的治疗机制

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We combine text mining with methods of systems biology for the first time, to predict functional networks for therapeutic mechanisms of Traditional Chinese Medicine in rheumatoid arthritis. The text mining results indicated rheumatoid arthritis highly associated with Tripterygium wilfordii, and eleven genes associated with both. Protein interaction information for these genes from databases and Literature data was visualized using cytoscape. Five highly-connected regions were detected by IPCA algorithm in this network. The most relevant functions and pathways were extracted from these subnetworks by BiNGO tool. Interestingly, regulation of defense response to virus and viral reproductive process were implicated by network-based analysis. Therefore, it was suggested that therapeutic mechanisms of Tripterygium wilfordii in rheumatoid arthritis should be involved in suppressing viral protein synthesis of infected cells and antiviral immune responses.
机译:我们首次将文本挖掘与系统生物学方法结合起来,以预测类风湿性关节炎中药治疗机制的功能网络。文本挖掘结果表明与逆型Wilfordii高度相关的类风湿性关节炎,以及与两者相关的11个基因。使用Cytoscape可视化来自数据库和文献数据的这些基因的蛋白质相互作用信息。在该网络中通过IPCA算法检测到五个高度连接的区域。通过Bingo工具从这些子网中提取最相关的功能和途径。有趣的是,基于网络的分析,涉及对病毒和病毒生殖过程的防御反应的调节。因此,有人建议,逆戟酮型紫红色关节炎的治疗机制应参与抑制感染细胞和抗病毒免疫应答的病毒蛋白合成。

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