Kearns Fiona L, Hudson Phillip S, Woodcock Henry L, Boresch Stefan
Department of Chemistry, University of South Florida, 4202 E. Fowler Ave, CHE205, Tampa, Florida, 33620-5250.
Faculty of Chemistry, Department of Computational Biological Chemistry, University of Vienna, Währingerstraße 17, Vienna, A-1090, Austria.
J Comput Chem. 2017 Jun 15;38(16):1376-1388. doi: 10.1002/jcc.24706. Epub 2017 Mar 8.
We demonstrate that Jarzynski's equation can be used to reliably compute free energy differences between low and high level representations of systems. The need for such a calculation arises when employing the so-called "indirect" approach to free energy simulations with mixed quantum mechanical/molecular mechanical (QM/MM) Hamiltonians; a popular technique for circumventing extensive simulations involving quantum chemical computations. We have applied this methodology to several small and medium sized organic molecules, both in the gas phase and explicit solvent. Test cases include several systems for which the standard approach; that is, free energy perturbation between low and high level description, fails to converge. Finally, we identify three major areas in which the difference between low and high level representations make the calculation of ΔAlow→high difficult: bond stretching and angle bending, different preferred conformations, and the response of the MM region to the charge distribution of the QM region. © 2016 Wiley Periodicals, Inc.
我们证明了雅尔津斯基方程可用于可靠地计算系统低层次和高层次表示之间的自由能差。当采用所谓的“间接”方法进行混合量子力学/分子力学(QM/MM)哈密顿量的自由能模拟时,就需要进行这样的计算;这是一种规避涉及量子化学计算的大量模拟的常用技术。我们已将此方法应用于气相和显式溶剂中的几个中小尺寸有机分子。测试案例包括几个标准方法(即在低层次和高层次描述之间进行自由能微扰)无法收敛的系统。最后,我们确定了低层次和高层次表示之间的差异使得计算ΔAlow→high变得困难的三个主要领域:键的拉伸和角的弯曲、不同的优选构象以及MM区域对QM区域电荷分布的响应。© 2016威利期刊公司。