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通过分子动力学模拟研究抗体结合和突变对 HIV-1 蛋白酶活性的抑制作用。

Inhibition of the activity of HIV-1 protease through antibody binding and mutations probed by molecular dynamics simulations.

机构信息

Department of Chemistry, Indian Institute of Technology Bombay, Powai, Mumbai, 400076, India.

出版信息

Sci Rep. 2020 Mar 26;10(1):5501. doi: 10.1038/s41598-020-62423-y.

Abstract

HIV-1 protease is an essential enzyme in the life cycle of the HIV-1 virus. The conformational dynamics of the flap region of the protease is critical for the ligand binding mechanism, as well as for the catalytic activity. The monoclonal antibody F11.2.32 raised against HIV-1 protease inhibits its activity on binding. We have studied the conformational dynamics of protease in its free, inhibitor ritonavir and antibody bound forms using molecular dynamics simulations. We find that upon Ab binding to the epitope region (residues 36-46) of protease, the overall flexibility of the protease is decreased including the flap region and the active site, which is similar to the decrease in flexibility observed by inhibitor binding to the protease. This suggests an allosteric mechanism to inhibit protease activity. Further, the protease mutants G40E and G40R are known to have decreased activity and were also subjected to MD simulations. We find that the loss of flexibility in the mutants is similar to that observed in the protease bound to the Ab/inhibitor. These insights highlight the role played by dynamics in the function of the protease and how control of flexibility through Ab binding and site specific mutations can inhibit protease activity.

摘要

HIV-1 蛋白酶是 HIV-1 病毒生命周期中的一种必需酶。蛋白酶的 flap 区域的构象动力学对于配体结合机制以及催化活性都至关重要。针对 HIV-1 蛋白酶的单克隆抗体 F11.2.32 能够抑制其结合活性。我们使用分子动力学模拟研究了游离蛋白酶、抑制剂利托那韦和抗体结合形式下蛋白酶的构象动力学。我们发现,当抗体结合到蛋白酶的表位区域(残基 36-46)时,蛋白酶的整体灵活性降低,包括 flap 区域和活性位点,这与抑制剂结合到蛋白酶时观察到的灵活性降低相似。这表明存在一种变构机制来抑制蛋白酶活性。此外,已知 G40E 和 G40R 蛋白酶突变体的活性降低,并且也进行了 MD 模拟。我们发现,突变体的灵活性丧失与与抗体/抑制剂结合的蛋白酶相似。这些见解突出了动力学在蛋白酶功能中的作用,以及通过抗体结合和位点特异性突变来控制灵活性如何抑制蛋白酶活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53c0/7098958/39dbd549678b/41598_2020_62423_Fig1_HTML.jpg

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