Laboratory of Physical Chemistry, ETH Zürich , Vladimir-Prelog-Weg 2, 8093 Zürich, Switzerland.
J Chem Theory Comput. 2017 Jun 13;13(6):3020-3030. doi: 10.1021/acs.jctc.7b00286. Epub 2017 May 26.
Replica-exchange enveloping distribution sampling (RE-EDS) allows the efficient estimation of free-energy differences between multiple end-states from a single molecular dynamics (MD) simulation. In EDS, a reference state is sampled, which can be tuned by two types of parameters, i.e., smoothness parameters(s) and energy offsets, such that all end-states are sufficiently sampled. However, the choice of these parameters is not trivial. Replica exchange (RE) or parallel tempering is a widely applied technique to enhance sampling. By combining EDS with the RE technique, the parameter choice problem could be simplified and the challenge shifted toward an optimal distribution of the replicas in the smoothness-parameter space. The choice of a certain replica distribution can alter the sampling efficiency significantly. In this work, global round-trip time optimization (GRTO) algorithms are tested for the use in RE-EDS simulations. In addition, a local round-trip time optimization (LRTO) algorithm is proposed for systems with slowly adapting environments, where a reliable estimate for the round-trip time is challenging to obtain. The optimization algorithms were applied to RE-EDS simulations of a system of nine small-molecule inhibitors of phenylethanolamine N-methyltransferase (PNMT). The energy offsets were determined using our recently proposed parallel energy-offset (PEOE) estimation scheme. While the multistate GRTO algorithm yielded the best replica distribution for the ligands in water, the multistate LRTO algorithm was found to be the method of choice for the ligands in complex with PNMT. With this, the 36 alchemical free-energy differences between the nine ligands were calculated successfully from a single RE-EDS simulation 10 ns in length. Thus, RE-EDS presents an efficient method for the estimation of relative binding free energies.
复制交换包络分布采样(RE-EDS)允许从单个分子动力学(MD)模拟中有效地估计多个末端状态之间的自由能差异。在 EDS 中,采样参考状态,可以通过两种类型的参数进行调整,即平滑参数(s)和能量偏移,以使所有末端状态都得到充分采样。然而,这些参数的选择并不简单。复制交换(RE)或平行温度是一种广泛应用的增强采样技术。通过将 EDS 与 RE 技术结合,可以简化参数选择问题,并将挑战转移到平滑参数空间中副本的最佳分布上。选择特定的副本分布可以显著改变采样效率。在这项工作中,全局往返时间优化(GRTO)算法被测试用于 RE-EDS 模拟。此外,还提出了一种局部往返时间优化(LRTO)算法,用于环境适应缓慢的系统,在这种系统中,获得可靠的往返时间估计具有挑战性。优化算法被应用于 phenylethanolamine N-methyltransferase (PNMT) 的九种小分子抑制剂系统的 RE-EDS 模拟。使用我们最近提出的并行能量偏移(PEOE)估计方案确定能量偏移。虽然多态 GRTO 算法为水中的配体生成了最佳的副本分布,但多态 LRTO 算法被发现是与 PNMT 结合的配体的首选方法。通过这种方法,成功地从单个 RE-EDS 模拟 10 ns 的长度计算了九种配体之间的 36 种阿尔乔姆自由能差异。因此,RE-EDS 提供了一种有效估计相对结合自由能的方法。