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计算研究金刚烷胺对经典猪瘟病毒 p7 离子通道活性的抑制作用。

Computational investigation in inhibitory effects of amantadine on classical swine fever virus p7 ion channel activity.

机构信息

School of Basic Medical Sciences, Binzhou Medical University, Yantai, 264003, China.

Medicine and Pharmacy Research Center, Binzhou Medical University, Yantai, 264003, China.

出版信息

Sci Rep. 2024 Sep 2;14(1):20387. doi: 10.1038/s41598-024-71477-1.

DOI:10.1038/s41598-024-71477-1
PMID:39223222
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11369150/
Abstract

Classical swine fever virus (CSFV) p7 viroporin plays crucial roles in cellular ion balance and permeabilization. The antiviral drug amantadine effectively inhibits viral replication by blocking the activity of CSFV p7 viroporin. However, little information is available for the binding mode of amantadine with CSFV p7 viroporin, due to the lack of a known polymer structure for CSFV p7. In this study, we employed AlphaFold2 to predict CSFV p7 structures. Subsequently, we conducted a docking study to investigate the binding sites of amantadine to CSFV p7. Computational analysis showed that CSFV p7 forms a pore channel in a hexameric structure. Furthermore, molecular dynamics (MD) simulations and mutant analyses further suggest that CSFV p7 likely exists as a hexamer. Docking studies and MD simulations showed that amantadine interacts with the hydrophibic regions of tetramer and pentamer, as well as with the hydrophobic pore channel of the hexamer. Considering the potential hexameric assembly of CSFV p7, along with docking results, MD simulations, and the characteristics of the gated ion channels, we propose a model of CSFV p7 ion channel based on its hexameric configuration. In this model, residues E21, Y25, and R34 are suggested to selectively recruit and dehydrate ions, while residues L28 and L31 likely act as hydrophobic constrictors, thereby restricting the free movement of water. The binding of amantadine to residues I20, E21, V24 and Y25 effectively blocks ion transport. However, this proposed molecular model requires experimental validation. Our findings give a structural insight into the models of CSFV p7 as an ion channel and provide a molecular explanation for the inhibition effects of amantadine on CSFV p7-mediated ion channel conductance.

摘要

经典猪瘟病毒(CSFV)p7 离子通道蛋白在细胞离子平衡和通透性中起着关键作用。抗病毒药物金刚烷胺通过抑制 CSFV p7 离子通道蛋白的活性,有效地抑制病毒复制。然而,由于缺乏 CSFV p7 的已知聚合物结构,对于金刚烷胺与 CSFV p7 的结合模式知之甚少。在这项研究中,我们使用 AlphaFold2 来预测 CSFV p7 的结构。随后,我们进行了对接研究,以研究金刚烷胺与 CSFV p7 的结合位点。计算分析表明,CSFV p7 在六聚体结构中形成一个孔道。此外,分子动力学(MD)模拟和突变分析进一步表明,CSFV p7 可能以六聚体形式存在。对接研究和 MD 模拟表明,金刚烷胺与四聚体和五聚体的疏水区以及六聚体的疏水性孔道相互作用。考虑到 CSFV p7 可能存在六聚体组装,结合对接结果、MD 模拟以及门控离子通道的特点,我们提出了一个基于 CSFV p7 六聚体构象的 CSFV p7 离子通道模型。在这个模型中,推测残基 E21、Y25 和 R34 选择性募集并脱水离子,而残基 L28 和 L31 可能作为疏水性收缩剂,从而限制水的自由移动。金刚烷胺与残基 I20、E21、V24 和 Y25 的结合有效地阻断了离子运输。然而,这个提出的分子模型需要实验验证。我们的研究结果为 CSFV p7 作为离子通道的模型提供了结构上的见解,并为金刚烷胺抑制 CSFV p7 介导的离子通道电导的抑制作用提供了分子解释。

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