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了解水对严重急性呼吸综合征冠状病毒2(SARS CoV-2)主要蛋白酶结合位点温度依赖性结构修饰的作用。

Understanding the role of water on temperature-dependent structural modifications of SARS CoV-2 main protease binding sites.

作者信息

Venugopal Pushyaraga P, Singh Omkar, Chakraborty Debashree

机构信息

Biophysical and Computational Chemistry Laboratory, Department of Chemistry, National Institute of Technology Karnataka, India.

出版信息

J Mol Liq. 2022 Oct 1;363:119867. doi: 10.1016/j.molliq.2022.119867. Epub 2022 Jul 20.

Abstract

Thermally stable and labile proteases are found in microorganisms. Protease mediates the cleavage of polyproteins in the virus replication and transcription process. 6 µs MD simulations were performed for monomer/dimer SARS CoV-2 main protease system in both SPC/E and mTIP3P water model to analyse the temperature-dependent behaviour of the protein. It is found that maximum conformational changes are observed at 348 K which is near the melting temperature. Network distribution of evolved conformations shows an increase in the number of communities with the rise in the temperature. The global conformation of the protein was found to be intact whereas a local conformational space evolved due to thermal fluctuations. The global conformational change in the free energy ΔΔG value for the monomer and the dimer between 278 K and 383 K is found to be 2.51 and 2.10 kJ/mol respectively. A detailed analysis was carried out on the effect of water on the temperature-dependent structural modifications of four binding pockets of SARS CoV-2 main protease namely, catalytic dyad, substrate-binding site, dimerization site and allosteric site. It is found that the water structure around the binding sites is altered with temperature. The water around the dimer sites is more ordered than the monomer sites regardless of the rise in temperature due to structural rigidity. The energy expense of binding the small molecules at substrate binding is less compared to the allosteric site. The water-water hydrogen bond lifetime is found to be more near the cavity of His41. Also, it is observed that mTIP3P water molecules have a similar effect to that of SPC/E water molecules on the main protease.

摘要

在微生物中发现了热稳定和热不稳定的蛋白酶。蛋白酶在病毒复制和转录过程中介导多聚蛋白的切割。在SPC/E和mTIP3P水模型中对单体/二聚体SARS-CoV-2主要蛋白酶系统进行了6微秒的分子动力学模拟,以分析该蛋白的温度依赖性行为。研究发现,在接近熔化温度的348K时观察到最大构象变化。进化构象的网络分布显示,随着温度升高,群落数量增加。发现该蛋白的整体构象保持完整,而局部构象空间因热波动而发生变化。在278K和383K之间,单体和二聚体的自由能ΔΔG值的整体构象变化分别为2.51和2.10kJ/mol。对水对SARS-CoV-2主要蛋白酶四个结合口袋(即催化二元体、底物结合位点、二聚化位点和变构位点)的温度依赖性结构修饰的影响进行了详细分析。研究发现,结合位点周围的水结构随温度而改变。由于结构刚性,无论温度如何升高,二聚体位点周围的水比单体位点周围的水更有序。与变构位点相比,在底物结合处结合小分子的能量消耗更少。发现水-水氢键寿命在His41腔附近更长。此外,观察到mTIP3P水分子对主要蛋白酶的作用与SPC/E水分子相似。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b980/9297661/9ba6030e898e/gr1_lrg.jpg

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