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通过模拟和自由能计算理解抗锥虫半胱氨酸蛋白酶抑制剂的构效关系。

Understanding Structure-Activity Relationships for Trypanosomal Cysteine Protease Inhibitors by Simulations and Free Energy Calculations.

机构信息

Grupo de Biofísica Computacional e Modelagem Molecular, Programa de Computação Científica (PROCC) , Fundação Oswaldo Cruz , Av. Brasil 4365 , Rio de Janeiro , RJ 21040-360 , Brazil.

Laboratório de Modelagem Molecular e Planejamento de Fármacos, Departamento de Bioquímica e Imunologia, Instituto de Ciências Biológicas , Universidade Federal de Minas Gerais , Avenida Antônio Carlos 6627 , Belo Horizonte , MG 31270-901 , Brazil.

出版信息

J Chem Inf Model. 2019 Jan 28;59(1):137-148. doi: 10.1021/acs.jcim.8b00557. Epub 2018 Dec 21.

Abstract

The protozoan cysteine proteases cruzain in Trypanosoma cruzi and rhodesain in Trypanosoma brucei are therapeutic targets for Chagas disease and Human African Trypanosomiasis (HAT), respectively. A benzimidazole series was previously characterized as potent noncovalent competitive cruzain and rhodesain inhibitors with activity against trypanosomes. Common structure-activity relationships (SAR) trends and structural modifications leading to selectivity against each enzyme were described. However, some of these trends could not be understood based on the reported binding mode of lead compound 1. Therefore, we employed microsecond molecular dynamics simulations and free energy calculations to understand qualitative SAR trends and to quantitatively recapitulate them. Simulations revealed the most stable protein-ligand interactions and provided insights concerning enzyme selectivity. Calculated relative binding free energies of compound 1 analogs exhibited deviations of 1.1 and 2.2 kcal/mol from the experimental values for cruzain and rhodesain, respectively. These data encourage prospective thermodynamic integration (TI) studies to optimize this series and facilitate the prioritization of compounds for synthesis.

摘要

原生动物半胱氨酸蛋白酶克鲁兹ain 在 Trypanosoma cruzi 和 Rhodesain 在 Trypanosoma brucei 分别是恰加斯病和人类非洲锥虫病(HAT)的治疗靶点。先前已经描述了苯并咪唑系列作为有效的非共价竞争 Cruzain 和 Rhodesain 抑制剂,对锥虫具有活性。描述了常见的结构-活性关系(SAR)趋势和结构修饰,以针对每种酶获得选择性。然而,根据报告的主导化合物 1 的结合模式,无法理解其中的一些趋势。因此,我们采用微秒分子动力学模拟和自由能计算来理解定性 SAR 趋势并对其进行定量重现。模拟揭示了最稳定的蛋白质-配体相互作用,并提供了有关酶选择性的见解。计算得到的化合物 1 类似物的相对结合自由能分别偏离 Cruzain 和 Rhodesain 的实验值 1.1 和 2.2 kcal/mol。这些数据鼓励进行有前途的热力学积分(TI)研究,以优化该系列并促进化合物的合成优先级。

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