Hudson Phillip S, White Justin K, Kearns Fiona L, Hodoscek Milan, Boresch Stefan, Lee Woodcock H
Department of Chemistry, University of South Florida, 4202 E. Fowler Ave., CHE205, Tampa, FL 33620-5250, USA.
Center for Molecular Modeling, National Institute of Chemistry, Hajdrihova 19, SI-1000 Ljubljana, Slovenia.
Biochim Biophys Acta. 2015 May;1850(5):944-953. doi: 10.1016/j.bbagen.2014.09.016. Epub 2014 Sep 17.
Accurately modeling condensed phase processes is one of computation's most difficult challenges. Include the possibility that conformational dynamics may be coupled to chemical reactions, where multiscale (i.e., QM/MM) methods are needed, and this task becomes even more daunting.
Free energy simulations (i.e., molecular dynamics), multiscale modeling, and reweighting schemes.
Herein, we present two new approaches for mitigating the aforementioned challenges. The first is a new chain-of-replica method (off-path simulations, OPS) for computing potentials of mean force (PMFs) along an easily defined reaction coordinate. This development is coupled with a new distributed, highly-parallel replica framework (REPDstr) within the CHARMM package. Validation of these new schemes is carried out on two processes that undergo conformational changes. First is the simple torsional rotation of butane, while a much more challenging glycosidic rotation (in vacuo and solvated) is the second. Additionally, a new approach that greatly improves (i.e., possibly an order of magnitude) the efficiency of computing QM/MM PMFs is introduced and compared to standard schemes. Our efforts are grounded in the recently developed method for efficiently computing QM-based free energies (i.e., QM-Non-Boltzmann Bennett, QM-NBB). Again, we validate this new technique by computing the QM/MM PMF of butane's torsional rotation.
The OPS-REPDstr method is a promising new approach that overcomes many limitations of standard pathway simulations in CHARMM. The combination of QM-NBB with pathway techniques is very promising as it offers significant advantages over current procedures.
Efficiently computing potentials of mean force is a major, unresolved, area of interest. This article is part of a Special Issue entitled Recent developments of molecular dynamics.
精确模拟凝聚相过程是计算领域最具挑战性的任务之一。考虑到构象动力学可能与化学反应耦合,而这需要多尺度(即量子力学/分子力学,QM/MM)方法,这项任务变得更加艰巨。
自由能模拟(即分子动力学)、多尺度建模和重加权方案。
在此,我们提出了两种新方法来应对上述挑战。第一种是一种新的副本链方法(非路径模拟,OPS),用于沿着易于定义的反应坐标计算平均力势(PMF)。这一进展与CHARMM软件包中的一个新的分布式、高度并行的副本框架(REPDstr)相结合。在两个经历构象变化的过程上对这些新方案进行了验证。第一个是丁烷的简单扭转旋转,而第二个是更具挑战性的糖苷键旋转(在真空和溶剂化条件下)。此外,还引入了一种新方法,该方法极大地提高了(即可能提高一个数量级)计算QM/MM PMF的效率,并与标准方案进行了比较。我们的工作基于最近开发的有效计算基于量子力学的自由能的方法(即量子力学-非玻尔兹曼贝内特,QM-NBB)。同样,我们通过计算丁烷扭转旋转的QM/MM PMF来验证这项新技术。
OPS-REPDstr方法是一种很有前途的新方法,它克服了CHARMM中标准路径模拟的许多局限性。QM-NBB与路径技术的结合非常有前途,因为它比当前方法具有显著优势。
有效计算平均力势是一个主要的、尚未解决的研究领域。本文是《分子动力学的最新进展》特刊的一部分。