Eichenberger Andreas P, Huang Wei, Riniker Sereina, van Gunsteren Wilfred F
Laboratory of Physical Chemistry, Swiss Federal Institute of Technology, ETH , 8093 Zürich, Zürich, Switzerland.
J Chem Theory Comput. 2015 Jul 14;11(7):2925-37. doi: 10.1021/acs.jctc.5b00295. Epub 2015 Jun 23.
A supra-atomic coarse-grained (CG) force field for liquid n-alkanes is presented. The model was calibrated using experimental thermodynamic data and structural as well as energetic properties for 14 n-alkanes as obtained from atomistic fine-grained (FG) simulations of the corresponding hydrocarbons using the GROMOS 45A3 biomolecular force field. A variation of the nonbonded force-field parameters obtained from mapping the FG interactions onto the CG degrees of freedom to fit the density and heat of vaporization to experimental values turned out to be mandatory for a correct reproduction of these data by the CG model, while the bonded force-field parameters for the CG model could be obtained from a Boltzmann-weighted fit with some variations with respect to the corresponding properties from the FG simulations mapped onto the CG degrees of freedom. The model presents 6 different CG bead types, for bead sizes from 2 to 4 distinguishing between terminal and nonterminal beads within an alkane chain (end or middle). It contains different nonbonded Lennard-Jones parameters for the interaction of CG alkanes with CG water. The CG alkane model was further tested by comparing predictions of the excess free energy, the self-diffusion constant, surface tension, isothermal compressibility, heat capacity, thermal expansion coefficient, and shear viscosity for n-alkanes to experimental values. The CG model offers a thermodynamically calibrated basis for the development of CG models of lipids.
提出了一种用于液态正构烷烃的超原子粗粒度(CG)力场。该模型使用实验热力学数据以及14种正构烷烃的结构和能量性质进行校准,这些数据是通过使用GROMOS 45A3生物分子力场对相应烃类进行原子精细粒度(FG)模拟获得的。为了使CG模型正确再现这些数据,将FG相互作用映射到CG自由度上以拟合密度和汽化热而获得的非键合力场参数的变化被证明是必不可少的,而CG模型的键合力场参数可以通过玻尔兹曼加权拟合获得,相对于从FG模拟映射到CG自由度上的相应性质有一些变化。该模型呈现6种不同的CG珠子类型,珠子尺寸从2到4,区分烷烃链内的末端和非末端珠子(末端或中间)。它包含用于CG烷烃与CG水相互作用的不同非键合伦纳德-琼斯参数。通过将正构烷烃的过量自由能、自扩散常数、表面张力、等温压缩率、热容、热膨胀系数和剪切粘度的预测值与实验值进行比较,进一步测试了CG烷烃模型。该CG模型为脂质CG模型的开发提供了一个经过热力学校准的基础。