通过 FGF 通路靶向揭示针对 SRC 蛋白的植物化合物疗法--一种整合 Omics 数据分析、网络药理学、虚拟筛选和分子动力学的综合方法。

Pankaj Kumar Tripathi, Chakresh Kumar Jain
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引用次数: 0

摘要

导言大肠癌是一种受基因突变和环境因素影响的复杂疾病。由于其错综复杂的性质,诊断和治疗这种疾病需要考虑个人情况的综合方法。本研究旨在从天然生物活性化合物中找出与结直肠癌相关的基因及其治疗药物:方法:从 NCBI 基因表达总库(GEO)数据集中筛选出具有明显预后意义的差异表达基因(DEGs)。使用 STRING 数据库构建了蛋白质-蛋白质相互作用网络,并使用 Cytoscape 中的 Network Analyzer 和 CytoNCA 插件确定了关键基因。进一步的分析包括功能注释、生物通路分析、SRC机制分析,以揭示SRC在CRC中的作用。此外,我们还进行了虚拟筛选和分子对接、理化性质分析以及 MD 模拟研究,以便为有前景的治疗靶点提出合适的天然化合物:研究进行了差异基因表达分析,发现了 3621 个具有统计学意义的基因,其中 1467 个基因上调,2154 个基因下调。研究选取了 PPI 网络中度、间度中心性和接近度中心性最高的前十个基因作为关键基因。结果发现,SRC基因具有最高的度和接近中心性。对关键基因的功能注释和通路分析特别关注了SRC的机制,发现SRC在激活CRC细胞中的RAS-RAF-MEK-ERK和Wnt/β-catenin通路、促进增殖和侵袭方面发挥作用。通过对SRC进行分子建模,筛选出了来自热带水果的植物化合物,其中芦丁的对接得分高于FDA批准的抗癌药物。超过 100 ns 的 MD 模拟和 MD 后分析,即 RMSD、SASA、RMSF、FEL、RG、氢键、PCA 和 MMPBSA,理解了蛋白质配体复合物的稳定和稳健的相互作用。这些发现表明,芦丁有可能成为治疗 CRC 的有效天然分子。研究得出结论,SRC 在 CRC 中发挥着关键作用,影响着对癌症发展至关重要的细胞过程,而芦丁被发现是一种很有前景的 SRC 抑制剂,这表明芦丁有可能成为 CRC 的替代治疗策略。芦丁一致的分子相互作用需要通过湿实验室实验进一步验证,这为受 CRC 影响的个体带来了希望。
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Unravelling Phyto-Compound Therapeutics against SRC Protein via FGF Pathway Targeting-A Comprehensive Approach Integrating Omics Data Analysis, Network Pharmacology, Virtual Screening, and Molecular Dynamics.

Introduction: Colorectal cancer is a complex condition influenced by genetic mutations and environmental factors. Due to its intricate nature, the diagnosis and treatment of this condition require a comprehensive approach that considers individual circumstances. The study aimed to identify genes linked with colorectal cancer and their therapeutic agents from natural bioactive compounds.

Methods: The significantly prognostic differentially expressed genes (DEGs) were screened out from NCBI Gene Expression Omnibus (GEO) datasets. A protein-protein interaction network was constructed using STRING Database, and key genes were identified using Network Analyzer and CytoNCA plugins within Cytoscape. Further analysis involved functional annotations, and biological pathways analysis, SRC mechanism to uncover the role of SRC in CRC. Additionally, we performed virtual screening and molecular docking, Physiochemical property analysis along with MD simulation study to propose suitable natural compounds for promising therapeutic targets.

Results: The study conducted differential gene expression analysis, identifying 3621 statistically significant genes, with 1467 upregulated and 2154 downregulated. The top ten genes with the highest degree, betweenness centrality, and closeness centrality in the PPI network were selected as key genes. The SRC gene was found to have the highest degree and closeness centrality. Functional annotation and pathway analysis of key genes with a specific focus on the SRC mechanism revealed that the SRC's role in activating the RAS-RAF-MEK-ERK and Wnt/β-catenin pathways in CRC cells, promoting proliferation and invasion. Molecular modelling of SRC led to the screening of phyto-compounds from tropical fruits, with Rutinexhibiting a higher docking score compared to FDA-approved anticancer drugs. MD simulations over 100 ns and the post-MD analysis i.e. RMSD, SASA, RMSF, FEL, RG, Hydrogen bond, PCA, and MMPBSA, comprehended the stable and robust interactions of a protein-ligand complex. These findings suggest Rutin's potential as a potent natural molecule for treating CRC. The study concludes that SRC plays a pivotal role in CRC, influencing cellular processes critical to cancer development and Rutin has been found to be a promising SRC inhibitor, suggesting a potential alternative therapeutic strategy for CRC. The consistent molecular interactions of Rutin necessitate further validation through wet lab experiments, offering hope for individuals affected by CRC.

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