Laboratory of Molecular and Cellular Screening Processes, Centre of Biotechnology of Sfax, University of Sfax, Sfax, Tunisia.
Department of Microbiology, Habib Bourguiba University Hospital/Faculty of Medicine of Sfax, University of Sfax, Sfax, Tunisia.
J Biomol Struct Dyn. 2024 Jun;42(9):4870-4887. doi: 10.1080/07391102.2023.2223663. Epub 2023 Jun 22.
The mutations concerned with non-small cell lung cancer involving epidermal growth factor receptor of tyrosine kinase family have primarily targeted. In this study, we employed a scalable high-throughput virtual screening (HTVS) framework and a targeted compound library of over 50.000 Erlotinib-derived compounds as noncovalent reversible EGFR inhibitors. Our HTVS work flow leverages include HTVS, SP (Standard Precision) and XP (Extra Precision) docking protocol along with its relative binding free energy calculation, cluster analysis study and ADMET properties. Then we used multiple ns-time scale molecular dynamics (MD) simulations and density functional theory (DFT) precise calculation techniques to elucidate how the bound ligand interact with the complexes conformational states involving motions both proximal and distal to the binding site. Based on glide score and protein-ligand interactions, the highest scoring molecule was selected for molecular dynamic simulation providing a complete insight into the conformational stability. A hyperfine analysis of DFT based refinement strategy highly supported their stability by strong intermolecular interactions. Together, our results demonstrate that the virtually screened top retained molecules present the best moieties introduced to Erlotinib. They exhibit interesting pharmacokinetic properties that can act as potent antitumor drug candidates than the lead compound drug and in some extent tackling the drug resistance problem which offer a springboard for further therapeutic experiments and applications.Communicated by Ramaswamy H. Sarma.
涉及表皮生长因子受体酪氨酸激酶家族的非小细胞肺癌的突变主要针对。在这项研究中,我们采用了可扩展的高通量虚拟筛选(HTVS)框架和一个包含超过 50000 个厄洛替尼衍生化合物的靶向化合物库,作为非共价可逆 EGFR 抑制剂。我们的 HTVS 工作流程包括 HTVS、SP(标准精度)和 XP(额外精度)对接方案及其相对结合自由能计算、聚类分析研究和 ADMET 特性。然后,我们使用多种纳秒时间尺度分子动力学(MD)模拟和密度泛函理论(DFT)精确计算技术来阐明结合配体如何与涉及结合位点近端和远端运动的复合物构象状态相互作用。基于滑行评分和蛋白-配体相互作用,选择得分最高的分子进行分子动力学模拟,全面了解构象稳定性。基于 DFT 的精细分析策略的超精细分析通过强分子间相互作用高度支持其稳定性。总之,我们的结果表明,虚拟筛选的顶级保留分子呈现了对厄洛替尼最佳的引入部分。它们表现出有趣的药代动力学特性,可以作为有效的抗肿瘤候选药物,在一定程度上解决耐药问题,为进一步的治疗实验和应用提供了跳板。由 Ramaswamy H. Sarma 交流。