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理论研究人类 20S 蛋白酶体模型活性部位的酸碱平衡。

Theoretical Studies of the Acid-Base Equilibria in a Model Active Site of the Human 20S Proteasome.

机构信息

Institute of Physical Chemistry, University of Göttingen, Tammannstrasse 6, 37077 Göttingen, Germany.

出版信息

J Chem Inf Model. 2021 Apr 26;61(4):1942-1953. doi: 10.1021/acs.jcim.0c01459. Epub 2021 Mar 15.

Abstract

The 20S proteasome is a macromolecule responsible for the chemical step in the ubiquitin-proteasome system of degrading unnecessary and unused proteins of the cell. It plays a central role both in the rapid growth of cancer cells and in viral infection cycles. Herein, we present a computational study of the acid-base equilibria in an active site of the human proteasome (caspase-like), an aspect which is often neglected despite the crucial role protons play in the catalysis. As example substrates, we take the inhibition by epoxy- and boronic acid-containing warheads. We have combined cluster quantum mechanical calculations, replica exchange molecular dynamics, and Bayesian optimization of nonbonded potential terms in the inhibitors. In relation to the latter, we propose an easily scalable approach for the reevaluation of nonbonded potentials making use of the hybrid quantum mechanics molecular mechanics dynamics information. Our results show that coupled acid-base equilibria need to be considered when modeling the inhibition mechanism. The coupling between a neighboring lysine and the reacting threonine is not affected by the presence of the studied inhibitors.

摘要

20S 蛋白酶体是一种大分子,负责细胞内泛素蛋白酶体系统中降解不必要和未使用的蛋白质的化学步骤。它在癌细胞的快速生长和病毒感染周期中都起着核心作用。在此,我们对人蛋白酶体(半胱天冬酶样)活性部位的酸碱平衡进行了计算研究,尽管质子在催化中起着至关重要的作用,但这一方面经常被忽视。作为示例底物,我们采用含环氧和硼酸的弹头的抑制剂。我们将簇量子力学计算、复制交换分子动力学和抑制剂中非键相互作用势能项的贝叶斯优化相结合。关于后者,我们提出了一种易于扩展的方法,用于利用混合量子力学分子力学动力学信息重新评估非键相互作用势能。我们的结果表明,在模拟抑制机制时需要考虑耦合的酸碱平衡。邻近赖氨酸和反应性苏氨酸之间的耦合不受所研究抑制剂的影响。

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