Department of Biology, Faculty of Science, Golestan University, Gorgan, Iran.
J Biomol Struct Dyn. 2024 Sep;42(14):7501-7514. doi: 10.1080/07391102.2023.2240424. Epub 2023 Jul 28.
Developing novel antiviral drugs against the SARS-CoV-2 virus and COVID-19 disease is imperative as the vaccines may not offer absolute protection. PLpro plays a crucial role in the viral life cycle, making it an attractive target for drug development. Several PLpro inhibitors have been developed, and their 3D structures in complex with PLpro are available. In this work, we employed Supervised Molecular Dynamics (SuMD), a specific Unbiased Molecular Dynamics (UMD) method, to investigate unbinding pathways of the novel inhibitors of PLpro (PDB IDs: 7LBR, 7RZC, 7SDR and 7E35) and GRL0617 (PDB ID: 7JRN) as a reference. We conducted three simulations for each ligand and achieved unbinding events in the nanosecond timescale in all simulations. We found that unbinding events are commonly affected by altering the conformation of the BL2 loop, which is caused by the natural fluctuations of the loop that are required to trap the substrate and throw out the product. BL2 loop is crucial for keeping the ligand and unbinding and acts as a double-edged sword. Any inhibitor designed to be effective must prevent the loop's natural fluctuations. We perceived that increasing ligands interactions with the binding pocket interior and the BL2 loop will help prevent natural fluctuation of the BL2 loop, Although the interactions with the binding pocket's inner side are more critical than the BL2 loop. These findings may be helpful in developing more potent inhibitors against SARS-CoV-2.Communicated by Ramaswamy H. Sarma.
开发针对 SARS-CoV-2 病毒和 COVID-19 疾病的新型抗病毒药物是当务之急,因为疫苗可能无法提供绝对的保护。PLpro 在病毒生命周期中起着至关重要的作用,使其成为药物开发的有吸引力的目标。已经开发了几种 PLpro 抑制剂,并且它们与 PLpro 形成复合物的 3D 结构是可用的。在这项工作中,我们采用了受监督的分子动力学(SuMD),这是一种特定的无偏分子动力学(UMD)方法,来研究新型 PLpro 抑制剂(PDB ID:7LBR、7RZC、7SDR 和 7E35)和 GRL0617(PDB ID:7JRN)的解结合途径作为参考。我们对每个配体进行了三次模拟,并且在所有模拟中都在纳秒时间尺度上实现了解结合事件。我们发现,解结合事件通常受到改变 BL2 环构象的影响,这是由该环的自然波动引起的,这种波动是必需的,以捕获底物并抛出产物。BL2 环对于保持配体和解结合至关重要,它是一把双刃剑。任何旨在有效的抑制剂都必须防止环的自然波动。我们发现,增加配体与结合口袋内部和 BL2 环的相互作用将有助于防止 BL2 环的自然波动,尽管与结合口袋内侧的相互作用比 BL2 环更为关键。这些发现可能有助于开发针对 SARS-CoV-2 的更有效的抑制剂。由 Ramaswamy H. Sarma 传达。