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Evaluating Thermodynamic Integration Performance of the New Amber Molecular Dynamics Package and Assess Potential Halogen Bonds of Enoyl-ACP Reductase (FabI) Benzimidazole Inhibitors

机译:评估新型琥珀色分子动力学软件包的热力学整合性能并评估烯丙基-ACP还原酶(FabI)苯并咪唑抑制剂的潜在卤素键

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摘要

Thermodynamic integration (TI) can provide accurate binding free energy insights in a lead optimization program, but its high computational expense has limited its usage. In the effort of developing an efficient and accurate TI protocol for FabI inhibitors lead optimization program, we carefully compared TI with different Amber molecular dynamics (MD) engines (sander and pmemd), MD simulation lengths, the number of intermediate states and transformation steps, and the Lennard-Jones and Coulomb Softcore potentials parameters in the one-step TI, using eleven benzimidazole inhibitors in complex with Francisella tularensis enoyl acyl reductase (FtFabI). To our knowledge, this is the first study to extensively test the new AMBER MD engine, pmemd, on TI and compare the parameters of the Softcore potentials in the one-step TI in a protein-ligand binding system. The best performing model, the one-step pmemd TI, using 6 intermediate states and 1 ns MD simulations, provides better agreement with experimental results (RMSD = 0.52 kcal/mol) than the best performing implicit solvent method, QM/MM-GBSA from our previous study (RMSD = 3.00 kcal/mol), while maintaining similar efficiency. Briefly, we show the optimized TI protocol to be highly accurate and affordable for the FtFabI system. This approach can be implemented in a larger scale benzimidazole scaffold lead optimization against FtFabI. Lastly, the TI results here also provide structure-activity relationship insights, and suggest the para-halogen in benzimidazole compounds might form a weak halogen bond with FabI, which is a well-known halogen bond favoring enzyme.
机译:热力学集成(TI)可以在潜在客户优化程序中提供准确的无约束能量见解,但其高计算量限制了其使用。为了开发针对FabI抑制剂领先的优化程序的高效,准确的TI方案,我们仔细地将TI与不同的Amber分子动力学(MD)引擎(Sander和pmemd),MD仿真长度,中间状态数和转化步骤进行了比较,一步TI中的Lennard-Jones和库仑软核势参数,其中使用了11种苯并咪唑抑制剂与土拉弗朗西斯菌烯酰基酰基还原酶(FtFabI)的复合物。据我们所知,这是首次在TI上广泛测试新型AMBER MD引擎pmemd,并在蛋白质-配体结合系统中一步一步比较软核电位参数的研究。性能最佳的模型,一步一步的pmemd TI,使用6种中间状态和1 ns的MD模拟,与性能最佳的隐式溶剂方法QM / MM-GBSA来自,其与实验结果(RMSD = 0.52 kcal / mol)的一致性更好我们之前的研究(RMSD = 3.00 kcal / mol),同时保持了相似的效率。简而言之,我们展示了优化的TI协议对于FtFabI系统是高度准确且价格合理的。该方法可以在针对FtFabI的大规模苯并咪唑支架中进行优化。最后,此处的TI结果还提供了结构-活性关系的见解,并表明苯并咪唑化合物中的对卤素可能与FabI形成弱卤素键,而FabI是众所周知的卤素键有利酶。

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