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转移性前列腺癌的整合生物信息学与药物再利用:通过转录谱分析和分子建模鉴定新的治疗靶点

Integrative bioinformatics and drug repurposing for metastatic prostate cancer: identifying novel therapeutic targets by transcriptional profiling and molecular Modeling.

作者信息

Nisar Haseeb, Prajapati Jignesh, Mumtaz Asma Muhammad, Iftikhar Atiqa, Faran Faria, Mehmood Rimsha Hamid, Shahid Samiah, Goswami Dweipayan

机构信息

Interdisciplinary Research Centre for Finance and Digital Economy, King Fahd University of Petroleum & Minerals, Academic Belt Road Dhahran 31261, Eastern Province, Saudi Arabia.

Department of Biochemistry & Forensic Science, University School of Sciences, Gujarat University, University Road, Navrangpura, Ahmedabad, 380009, Gujarat, India.

出版信息

Integr Biol (Camb). 2025 Jan 8;17. doi: 10.1093/intbio/zyaf016.

Abstract

Metastasis is one of the leading factors of cancer-related deaths worldwide. New potential targets and treatment strategies are needed to extend survival and enhance the quality of life for these patients. We performed an in-depth bioinformatics analysis to identify potential genes and associated potential therapeutic compounds for metastasis of prostate adenocarcinoma. The differentially expressed genes (DEGs) were first identified using four datasets (GSE8511), (GSE3325), (GSE27616) and (GSE6919) present in the Gene Expression Omnibus (GEO) database and analyzed using the GEO2R. WGCNA was performed to find a significant gene cluster. Network analysis was performed using MCODE and Cytohubba plugins of Cytoscape to select hub genes. Moreover, expression validation of key genes was carried out using the TCGA dataset. Functional annotation and pathway enrichment analyses were conducted for validation, while survival analysis was applied to assess potential therapeutic effects. DEGs retrieved from the GEO were submitted to the Connectivity Map database to identify potentially related compounds. Molecular docking, ADMET analysis and drug-likeness properties, MD simulations and MM-GBSA analysis were performed to screen for the best potential drugs. We identified three compounds-Prunetin, Ofloxacin, and ALW-II-49-7 that may help extend disease-free survival in patients with tumor metastasis. Additionally, ACTA2, MYLK, and CNN1 were recognized as potential therapeutic targets for these compounds. These drugs' potential effectiveness and binding efficiency were screened using induced fit molecular docking followed by 100 ns MD-based Simulations and MM-GBSA analysis. However, further in vitro and in vivo studies are needed to confirm these findings. Insight box This study integrates microarray gene expression profiling with bioinformatics tools to identify differentially expressed genes (DEGs) and co-expression networks using WGCNA. Network analysis in Cytoscape was used to screen hub genes, and the Connectivity Map (cMAP) database was searched for potential candidate drugs. Binding efficiency of repurposed drugs was evaluated using molecular docking, molecular dynamics (MD) simulations, and MM-GBSA analysis. Our findings provide the potential therapeutic drugs and targets of prostate adenocarcinoma metastasis with possibilities for follow-up in vitro and in vivo validation.

摘要

转移是全球癌症相关死亡的主要因素之一。需要新的潜在靶点和治疗策略来延长这些患者的生存期并提高其生活质量。我们进行了深入的生物信息学分析,以确定前列腺腺癌转移的潜在基因和相关的潜在治疗化合物。首先使用基因表达综合数据库(GEO)中的四个数据集(GSE8511)、(GSE3325)、(GSE27616)和(GSE6919)鉴定差异表达基因(DEG),并使用GEO2R进行分析。进行加权基因共表达网络分析(WGCNA)以找到显著的基因簇。使用Cytoscape的MCODE和Cytohubba插件进行网络分析以选择枢纽基因。此外,使用TCGA数据集对关键基因进行表达验证。进行功能注释和通路富集分析以进行验证,同时应用生存分析来评估潜在的治疗效果。从GEO检索到的DEG被提交到连通性图谱数据库以识别潜在相关的化合物。进行分子对接、ADMET分析和药物相似性性质、分子动力学模拟和MM-GBSA分析以筛选最佳潜在药物。我们鉴定出三种化合物——刺芒柄花素、氧氟沙星和ALW-II-49-7,它们可能有助于延长肿瘤转移患者的无病生存期。此外,肌动蛋白2(ACTA2)、肌球蛋白轻链激酶(MYLK)和凝溶胶蛋白1(CNN1)被确定为这些化合物的潜在治疗靶点。使用诱导契合分子对接,随后进行基于100纳秒分子动力学模拟和MM-GBSA分析,筛选这些药物的潜在有效性和结合效率。然而,需要进一步的体外和体内研究来证实这些发现。见解框 本研究将微阵列基因表达谱与生物信息学工具相结合,使用WGCNA鉴定差异表达基因(DEG)和共表达网络。利用Cytoscape中的网络分析筛选枢纽基因,并在连通性图谱(cMAP)数据库中搜索潜在的候选药物。使用分子对接、分子动力学(MD)模拟和MM-GBSA分析评估重新利用药物的结合效率。我们的研究结果提供了前列腺腺癌转移的潜在治疗药物和靶点,并有可能进行后续的体外和体内验证。

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