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基于结构的设计有前途的天然产物来抑制猴痘病毒胸苷酸激酶,并使用自由能计算进行验证。

Structure-based design of promising natural products to inhibit thymidylate kinase from Monkeypox virus and validation using free energy calculations.

机构信息

Department of Bioinformatics and Biological Statistics, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai, 200240, PR China; Zhongjing Research and Industrialization Institute of Chinese Medicine, Zhongguancun Scientific Park, Meixi, Nanyang, Henan, 473006, PR China; State Key Laboratory of Microbial Metabolism, Joint International Research Laboratory of Metabolic & Developmental Sciences, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai, 200030, PR China.

Gujranwala Medical College, Gondlanwala Rd, Gujranwala, Punjab, Pakistan.

出版信息

Comput Biol Med. 2023 May;158:106797. doi: 10.1016/j.compbiomed.2023.106797. Epub 2023 Mar 21.

Abstract

Monkeypox (MPXV) is a globally growing public health concern with 80,328 active cases and 53 deaths have been reported. No specific vaccine or drug is available for the treatment of MPXV. Hence, the current study also employed structure-based drug designing, molecular simulation, and free energy calculation methods to identify potential hit molecules against the TMPK of MPXV, which is a replicatory protein that helps the virus to replicate its DNA and increase the number of DNAs in the host cell. The 3D structure of TMPK was modeled with AlphaFold and screening of multiple natural products libraries (4,71,470 compounds) identified TCM26463, TCM2079, and TCM29893 from traditional Chinese medicines database (TCM), SANC00240, SANC00984, and SANC00986 South African natural compounds database (SANCDB), NPC474409, NPC278434 and NPC158847 from NPASS (natural product activity and species source database) while CNP0404204, CNP0262936, and CNP0289137 were shortlisted from coconut database (collection of open natural products) as the best hits. These compounds interact with the key active site residues through hydrogen bonds, salt bridges, and pie-pie interactions. The structural dynamics and binding free energy results further revealed that these compounds possess stable dynamics with excellent binding free energy scores. Moreover, the dissociation constant (K) and bioactivity analysis revealed stronger activity of these compounds exhibit stronger biological activity against MPXV and may inhibit it in in vitro conditions. All the results demonstrated that the designed novel compounds possess stronger inhibitory activity than the control complex (TPD-TMPK) from the vaccinia virus. The current study is the first to design small molecule inhibitors for the replication protein of MPXV which may help in controlling the current epidemic and also overcome the challenge of vaccine evasion.

摘要

猴痘(MPXV)是一个全球性的公共卫生关注点,目前已报告 80328 例活跃病例和 53 例死亡。目前尚无针对 MPXV 的特定疫苗或药物。因此,本研究还采用基于结构的药物设计、分子模拟和自由能计算方法,以鉴定针对 MPXV 的 TMPK 的潜在命中分子,该分子是一种复制蛋白,有助于病毒复制其 DNA 并增加宿主细胞中的 DNA 数量。TMPK 的 3D 结构由 AlphaFold 建模,筛选多个天然产物库(471470 种化合物),从传统中药数据库(TCM)中鉴定出 TCM26463、TCM2079 和 TCM29893,从南非天然产物数据库(SANCDB)中鉴定出 SANC00240、SANC00984 和 SANC00986,从 NPASS(天然产物活性和物种来源数据库)中鉴定出 NPC474409、NPC278434 和 NPC158847,从椰子数据库(开放天然产物集合)中鉴定出 CNP0404204、CNP0262936 和 CNP0289137 作为最佳命中。这些化合物通过氢键、盐桥和 pie-pie 相互作用与关键活性位点残基相互作用。结构动力学和结合自由能结果进一步表明,这些化合物具有稳定的动力学和优异的结合自由能评分。此外,解离常数(K)和生物活性分析表明,这些化合物具有更强的活性,对 MPXV 表现出更强的生物活性,可能在体外条件下抑制其活性。所有结果表明,与来自牛痘病毒的对照复合物(TPD-TMPK)相比,设计的新型化合物具有更强的抑制活性。本研究首次为 MPXV 的复制蛋白设计小分子抑制剂,有助于控制当前的疫情,并克服疫苗逃避的挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7837/10029349/042b9c29d4a1/gr1_lrg.jpg

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