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将自由能工作流程FEW扩展到隐式溶剂/隐式膜MM-PBSA计算。

Extension of the free energy workflow FEW towards implicit solvent/implicit membrane MM-PBSA calculations.

作者信息

Homeyer Nadine, Gohlke Holger

机构信息

Mathematisch-Naturwissenschaftliche Fakultät, Institut für Pharmazeutische und Medizinische Chemie, Heinrich-Heine-Universität Düsseldorf, Germany.

Mathematisch-Naturwissenschaftliche Fakultät, Institut für Pharmazeutische und Medizinische Chemie, Heinrich-Heine-Universität Düsseldorf, Germany.

出版信息

Biochim Biophys Acta. 2015 May;1850(5):972-982. doi: 10.1016/j.bbagen.2014.10.013. Epub 2014 Oct 23.

Abstract

BACKGROUND

The number of high-resolution structures of pharmacologically relevant membrane proteins has been strongly increasing. This makes computing relative affinities of chemically similar compounds binding to a membrane protein possible in order to guide decision making in drug design. However, the preparation step of such calculations is time-consuming and complex.

METHODS

We extended the free energy workflow tool FEW, available in AMBER, towards facilitating the setup of molecular dynamics simulations with explicit membrane, and the setup and execution of effective binding energy calculations according to a 1-trajectory implicit solvent/implicit membrane MM-PBSA approach for multiple ligands binding to the same membrane protein.

RESULTS

We validated the implemented protocol initially on two model systems, a sodium ion in the presence of an implicit membrane slab and a proton traversing the M2 proton-channel of the influenza A virus. For the latter, we found a good agreement for several important events along the proton pathway with those obtained in a recent computational study. Finally, we performed a case study on effective binding energy calculations for a set of inhibitors binding to the M2 proton-channel.

CONCLUSIONS

From the case study, we estimate a considerable speed up in the setup and analysis times for implicit solvent/implicit membrane MM-PBSA calculations by the extended version of FEW compared to a manual preparation.

GENERAL SIGNIFICANCE

Together with the overall runtime and the analysis results, this suggests that such type of calculations can be valuable in later stages of drug design projects on membrane proteins. This article is part of a Special Issue entitled Recent developments of molecular dynamics.

摘要

背景

与药理学相关的膜蛋白的高分辨率结构数量一直在大幅增加。这使得计算与膜蛋白结合的化学相似化合物的相对亲和力成为可能,从而为药物设计中的决策提供指导。然而,此类计算的准备步骤既耗时又复杂。

方法

我们扩展了AMBER中可用的自由能工作流程工具FEW,以促进使用显式膜进行分子动力学模拟的设置,以及根据一种用于多个配体与同一膜蛋白结合的单轨迹隐式溶剂/隐式膜MM-PBSA方法来设置和执行有效的结合能计算。

结果

我们最初在两个模型系统上验证了所实施的方案,一个是存在隐式膜板时的钠离子,另一个是穿过甲型流感病毒M2质子通道的质子。对于后者,我们发现质子通道上几个重要事件的结果与最近一项计算研究中获得的结果吻合良好。最后,我们对一组与M2质子通道结合的抑制剂进行了有效结合能计算的案例研究。

结论

从案例研究中我们估计,与手动准备相比,扩展版FEW在隐式溶剂/隐式膜MM-PBSA计算的设置和分析时间上有显著加快。

普遍意义

结合总体运行时间和分析结果,这表明此类计算在膜蛋白药物设计项目的后期阶段可能具有重要价值。本文是名为“分子动力学的最新进展”的特刊的一部分。

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