Zhou Shenggao, Sun Hui, Cheng Li-Tien, Dzubiella Joachim, Li Bo, McCammon J Andrew
Department of Mathematics and Mathematical Center for Interdiscipline Research, Soochow University, 1 Shizi Street, Jiangsu, Suzhou 215006, China.
Department of Mathematics, University of California, San Diego, La Jolla, California 92093-0112, USA.
J Chem Phys. 2016 Aug 7;145(5):054114. doi: 10.1063/1.4959971.
Recent years have seen the initial success of a variational implicit-solvent model (VISM), implemented with a robust level-set method, in capturing efficiently different hydration states and providing quantitatively good estimation of solvation free energies of biomolecules. The level-set minimization of the VISM solvation free-energy functional of all possible solute-solvent interfaces or dielectric boundaries predicts an equilibrium biomolecular conformation that is often close to an initial guess. In this work, we develop a theory in the form of Langevin geometrical flow to incorporate solute-solvent interfacial fluctuations into the VISM. Such fluctuations are crucial to biomolecular conformational changes and binding process. We also develop a stochastic level-set method to numerically implement such a theory. We describe the interfacial fluctuation through the "normal velocity" that is the solute-solvent interfacial force, derive the corresponding stochastic level-set equation in the sense of Stratonovich so that the surface representation is independent of the choice of implicit function, and develop numerical techniques for solving such an equation and processing the numerical data. We apply our computational method to study the dewetting transition in the system of two hydrophobic plates and a hydrophobic cavity of a synthetic host molecule cucurbit[7]uril. Numerical simulations demonstrate that our approach can describe an underlying system jumping out of a local minimum of the free-energy functional and can capture dewetting transitions of hydrophobic systems. In the case of two hydrophobic plates, we find that the wavelength of interfacial fluctuations has a strong influence to the dewetting transition. In addition, we find that the estimated energy barrier of the dewetting transition scales quadratically with the inter-plate distance, agreeing well with existing studies of molecular dynamics simulations. Our work is a first step toward the inclusion of fluctuations into the VISM and understanding the impact of interfacial fluctuations on biomolecular solvation with an implicit-solvent approach.
近年来,一种变分隐式溶剂模型(VISM)已取得初步成功,该模型采用稳健的水平集方法,能够有效地捕捉不同的水合状态,并对生物分子的溶剂化自由能提供定量的良好估计。对所有可能的溶质 - 溶剂界面或介电边界的VISM溶剂化自由能泛函进行水平集最小化,可预测出一个通常接近初始猜测的平衡生物分子构象。在这项工作中,我们以朗之万几何流的形式发展了一种理论,将溶质 - 溶剂界面波动纳入VISM。这种波动对于生物分子的构象变化和结合过程至关重要。我们还开发了一种随机水平集方法来对该理论进行数值实现。我们通过作为溶质 - 溶剂界面力的“法向速度”来描述界面波动,在Stratonovich意义下推导相应的随机水平集方程,以使表面表示独立于隐函数的选择,并开发求解此类方程和处理数值数据的数值技术。我们应用我们的计算方法来研究两个疏水板和合成主体分子葫芦[7]脲的疏水腔系统中的去湿转变。数值模拟表明,我们的方法可以描述一个从自由能泛函的局部最小值中跳出的基础系统,并能够捕捉疏水系统的去湿转变。在两个疏水板的情况下,我们发现界面波动的波长对去湿转变有很大影响。此外,我们发现去湿转变的估计能垒与板间距离呈二次方比例关系,与现有的分子动力学模拟研究结果吻合良好。我们的工作是将波动纳入VISM并以隐式溶剂方法理解界面波动对生物分子溶剂化影响的第一步。