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SARS-CoV-2主要蛋白酶受迈克尔受体抑制作用的微观描述。改进抑制剂设计的策略。

A microscopic description of SARS-CoV-2 main protease inhibition with Michael acceptors. Strategies for improving inhibitor design.

作者信息

Ramos-Guzmán Carlos A, Ruiz-Pernía J Javier, Tuñón Iñaki

机构信息

Departamento de Química Física, Universidad de Valencia 46100 Burjassot Spain

出版信息

Chem Sci. 2021 Jan 29;12(10):3489-3496. doi: 10.1039/d0sc04978f.

Abstract

The irreversible inhibition of the main protease of SARS-CoV-2 by a Michael acceptor known as N3 has been investigated using multiscale methods. The noncovalent enzyme-inhibitor complex was simulated using classical molecular dynamics techniques and the pose of the inhibitor in the active site was compared to that of the natural substrate, a peptide containing the Gln-Ser scissile bond. The formation of the covalent enzyme-inhibitor complex was then simulated using hybrid QM/MM free energy methods. After binding, the reaction mechanism was found to be composed of two steps: (i) the activation of the catalytic dyad (Cys145 and His41) to form an ion pair and (ii) a Michael addition where the attack of the Sγ atom of Cys145 to the Cβ atom of the inhibitor precedes the water-mediated proton transfer from His41 to the Cα atom. The microscopic description of protease inhibition by N3 obtained from our simulations is strongly supported by the excellent agreement between the estimated activation free energy and the value derived from kinetic experiments. Comparison with the acylation reaction of a peptide substrate suggests that N3-based inhibitors could be improved by adding chemical modifications that could facilitate the formation of the catalytic dyad ion pair.

摘要

已使用多尺度方法研究了一种名为N3的迈克尔受体对严重急性呼吸综合征冠状病毒2(SARS-CoV-2)主要蛋白酶的不可逆抑制作用。使用经典分子动力学技术模拟了非共价酶-抑制剂复合物,并将抑制剂在活性位点的构象与天然底物(一种含有谷氨酰胺-丝氨酸可裂解键的肽)的构象进行了比较。然后使用混合量子力学/分子力学自由能方法模拟了共价酶-抑制剂复合物的形成。结合后,发现反应机制由两个步骤组成:(i)催化二元体(半胱氨酸145和组氨酸41)的活化形成离子对;(ii)迈克尔加成反应,其中半胱氨酸145的Sγ原子对抑制剂的Cβ原子的攻击先于水介导的质子从组氨酸41转移到Cα原子。我们模拟得到的N3对蛋白酶抑制作用的微观描述得到了估计的活化自由能与动力学实验得出的值之间的极佳一致性的有力支持。与肽底物的酰化反应的比较表明,可以通过添加有助于催化二元体离子对形成的化学修饰来改进基于N3的抑制剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b427/8179461/50cca58eff10/d0sc04978f-f1.jpg

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