The multiscale coarse-graining method. II. Numerical implementation for coarse-grained molecular models

被引:388
作者
Noid, W. G. [1 ]
Liu, Pu [1 ]
Wang, Yanting [1 ]
Chu, Jhih-Wei [1 ]
Ayton, Gary S. [1 ]
Izvekov, Sergei [1 ]
Andersen, Hans C. [2 ]
Voth, Gregory A. [1 ]
机构
[1] Univ Utah, Ctr Biophys Modeling & Simulat, Salt Lake City, UT 84112 USA
[2] Stanford Univ, Dept Chem, Stanford, CA 94305 USA
基金
美国国家科学基金会;
关键词
D O I
10.1063/1.2938857
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The multiscale coarse-graining (MS-CG) method [S. Izvekov and G. A. Voth, J. Phys. Chem. B 109, 2469 (2005); J. Chem. Phys. 123, 134105 (2005)] employs a variational principle to determine an interaction potential for a CG model from simulations of an atomically detailed model of the same system. The companion paper proved that, if no restrictions regarding the form of the CG interaction potential are introduced and if the equilibrium distribution of the atomistic model has been adequately sampled, then the MS-CG variational principle determines the exact many-body potential of mean force (PMF) governing the equilibrium distribution of CG sites generated by the atomistic model. In practice, though, CG force fields are not completely flexible, but only include particular types of interactions between CG sites, e.g., nonbonded forces between pairs of sites. If the CG force field depends linearly on the force field parameters, then the vector valued functions that relate the CG forces to these parameters determine a set of basis vectors that span a vector subspace of CG force fields. The companion paper introduced a distance metric for the vector space of CG force fields and proved that the MS-CG variational principle determines the CG force force field that is within that vector subspace and that is closest to the force field determined by the many-body PMF. The present paper applies the MS-CG variational principle for parametrizing molecular CG force fields and derives a linear least squares problem for the parameter set determining the optimal approximation to this many-body PMF. Linear systems of equations for these CG force field parameters are derived and analyzed in terms of equilibrium structural correlation functions. Numerical calculations for a one-site CG model of methanol and a molecular CG model of the EMIM+/NO3- ionic liquid are provided to illustrate the method. (C) 2008 American Institute of Physics.
引用
收藏
页数:20
相关论文
共 75 条
[1]  
Allen M. P., 2017, Computer Simulation of Liquids, DOI [10.1093/oso/9780198803195.001.0001, DOI 10.1093/OSO/9780198803195.001.0001]
[2]  
[Anonymous], 1992, NUMERICAL RECEIPES F
[3]  
[Anonymous], DL POLY USER MANUAL
[4]   Systematic coarse graining of biomolecular and softw-matter systems [J].
Ayton, Gary S. ;
Noid, Will G. ;
Voth, Gregory A. .
MRS BULLETIN, 2007, 32 (11) :929-934
[5]   Multiscale modeling of biomolecular systems: in serial and in parallel [J].
Ayton, Gary S. ;
Noid, Will G. ;
Voth, Gregory A. .
CURRENT OPINION IN STRUCTURAL BIOLOGY, 2007, 17 (02) :192-198
[6]  
Barrett R., 1994, Templates for the Solution of Linear Systems: Building Blocks for Iterative Methods, V2nd ed.
[7]   Anisotropic coarse-grained statistical potentials improve the ability to identify nativelike protein structures [J].
Buchete, NV ;
Straub, JE ;
Thirumalai, D .
JOURNAL OF CHEMICAL PHYSICS, 2003, 118 (16) :7658-7671
[8]   Orientational potentials extracted from protein structures improve native fold recognition [J].
Buchete, NV ;
Straub, JE ;
Thirumalai, D .
PROTEIN SCIENCE, 2004, 13 (04) :862-874
[9]   Emerging methods for multiscale simulation of biomolecular systems [J].
Chu, J. -W. ;
Ayton, G. S. ;
Izvekov, S. ;
Voth, G. A. .
MOLECULAR PHYSICS, 2007, 105 (2-3) :167-175
[10]   The multiscale challenge for biomolecular systems: coarse-grained modeling [J].
Chu, J. -W. ;
Izvekov, S. ;
Voth, G. A. .
MOLECULAR SIMULATION, 2006, 32 (3-4) :211-218