Exploring the Action Mechanism of Yadanzi ( Brucea javanica ) in the Treatment of Glioblastoma Based on Bioinformatics and Network Pharmacology

Wenyu Zhao, Fuchun Si
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Abstract

Abstract Objective  The aim of the study is to explore the molecular mechanism of Yadanzi ( Brucea javanica ) in the treatment of glioblastoma (GBM) by using the methods of bioinformatics and network pharmacology. Methods  The Traditional Chinese Medicine Systems Pharmacology Database and Analysis Platform (TCMSP) and literature retrieval method were applied to obtain the active ingredients of Yadanzi ( Brucea javanica ), and to predict the relevant targets of the active ingredients. The GBM-related targets were retrieved and screened through the Gene Expression Profiling Interactive Analysis (GEPIA) database, and mapped to each other with the targets of the components of Yadanzi ( Brucea javanica ) to obtain the intersection targets. The GBM differentially expressed gene targets were imported into the String database to obtain the protein interaction relationship, the Cytoscape software was used to draw the protein interaction network, the Cytobba and MCODE plug-ins were used to screen the core genes and important protein interaction modules, and the GEPIA database was applied to make survival analysis of the core genes. The network map of “active ingredients-targets” was constructed through the Cytoscape 3.6.1 software. Gene Ontology (GO) biological function enrichment analysis and Kyoto Encyclopedia of Genes and Genomes (KEGG) signaling pathway enrichment analysis for GBM differentially expressed genes were performed through the DAVID database. Results  Through TCMSP and literature retrieval, 23 potential active ingredients and 129 related targets were obtained from Yadanzi ( Brucea javanica ). In the GEPIA database, 247 GBM differentially expressed genes were screened, including 113 up-regulated genes and 134 downregulated genes. After mapping with the targets related to the active ingredients of Yadanzi ( Brucea javanica ), six intersection targets were obtained, that is, the potential action targets of Yadanzi ( Brucea javanica ) in treating GBM, including MMP2, HMOX1, BIRC5, EGFR, CCNB2 , and TOP2A . Cytoscape software was applied to build an “active ingredient-action target” network. Two active ingredients and five action targets of β-sitosterol (BS) and luteolin were found, and the targets were mainly concentrated in BS. It was found by KEGG pathway enrichment analysis that GBM differentially expressed genes were mainly involved in signaling pathways related to Staphylococcus aureus infection, phagosome formation, tuberculosis and systemic lupus erythematosus and other infectious and autoimmune diseases. It was found by GO enrichment analysis that the GBM differentially expressed genes mainly involved such biological processes (BP) as the processing and presentation of exogenous antigenic peptides and polysaccharide antigens through MHC II molecules, γ-interferon-mediated signaling pathways, extracellular matrix composition, and chemical synapses transmission; it involved cellular components such as cell junctions, axon terminal buttons, extracellular space, vesicle membranes for endocytosis, and MHC II protein complexes; molecular functions such as calcium-mediated ionic protein binding, MHC II molecular receptor activity, immunoglobulin binding, and phospholipase inhibitor activity were also involved. Survival analysis was conducted by GEPIA on the top 37 core targets in degree value, and a total of five genes related to GBM prognosis were obtained. Among them, FN1 and MMP2 were highly expressed while GABRD (γ-aminobutyric acid A receptor delta subunit) , RBFOX1 , and SLC6A7 were expressed at a low level in cancer patients. Conclusion  The pathogenesis of GBM is closely related to the human immune system, and BS and luteolin may be the main material basis of Yadanzi ( Brucea javanica ) for the treatment of GBM and the improvement of prognosis. The molecular mechanism may be related to the physical barrier formed by destroying the tumor cell stromal molecules and its involvement in tumor immune response.
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基于生物信息学和网络药理学探讨崖檀子治疗胶质母细胞瘤的作用机制
摘要目的应用生物信息学和网络药理学方法,探讨崖丹子治疗胶质母细胞瘤(GBM)的分子机制。方法采用中药系统药理学数据库与分析平台(TCMSP)和文献检索法,获取崖丹子的有效成分,并预测其相关靶点。通过基因表达谱交互分析(Gene Expression Profiling Interactive Analysis, GEPIA)数据库对gbm相关靶点进行检索和筛选,并与雅丹子(Brucea javanica)成分的靶点进行相互定位,获得交叉靶点。将GBM差异表达基因靶点导入String数据库获取蛋白相互作用关系,使用Cytoscape软件绘制蛋白相互作用网络,使用Cytobba和MCODE插件筛选核心基因和重要蛋白相互作用模块,应用GEPIA数据库对核心基因进行生存分析。通过Cytoscape 3.6.1软件构建“活性成分-靶点”网络图谱。通过DAVID数据库对GBM差异表达基因进行基因本体(GO)生物学功能富集分析和京都基因与基因组百科全书(KEGG)信号通路富集分析。结果通过TCMSP和文献检索,从崖丹子中分离得到23个潜在有效成分和129个相关靶点。在GEPIA数据库中,筛选出247个GBM差异表达基因,其中上调基因113个,下调基因134个。与崖丹子(鸦嘴菜)有效成分相关靶点作图后,得到6个交叉靶点,即崖丹子(鸦嘴菜)治疗GBM的潜在作用靶点,包括MMP2、HMOX1、BIRC5、EGFR、CCNB2和TOP2A。应用Cytoscape软件构建“活性成分-作用靶点”网络。发现β-谷甾醇(BS)和木犀草素两种有效成分和5个作用靶点,靶点主要集中在BS中。通过KEGG通路富集分析发现,GBM差异表达基因主要参与与金黄色葡萄球菌感染、吞噬体形成、肺结核和系统性红斑狼疮等感染性和自身免疫性疾病相关的信号通路。氧化石墨烯富集分析发现,GBM差异表达基因主要通过MHC II分子、γ-干扰素介导的信号通路、细胞外基质组成、化学突触传递等生物过程参与外源抗原肽和多糖抗原的加工和提呈;它涉及细胞成分,如细胞连接、轴突末端按钮、细胞外空间、用于内吞作用的囊泡膜和MHC II蛋白复合物;分子功能,如钙介导的离子蛋白结合、MHC II分子受体活性、免疫球蛋白结合和磷脂酶抑制剂活性也参与其中。通过GEPIA对度值排名前37位的核心靶点进行生存分析,共获得5个与GBM预后相关的基因。其中FN1、MMP2在肿瘤患者中高表达,GABRD (γ-氨基丁酸A受体δ亚基)、RBFOX1、SLC6A7在肿瘤患者中低表达。结论GBM的发病机制与人体免疫系统密切相关,BS和木犀草素可能是崖丹子治疗GBM、改善预后的主要物质基础。其分子机制可能与破坏肿瘤细胞间质分子形成物理屏障并参与肿瘤免疫应答有关。
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