Determination of alkali and halide monovalent ion parameters for use in explicitly solvated biomolecular simulations

被引:2779
作者
Joung, In Suk [1 ]
Cheatham, Thomas E., III [1 ,2 ,3 ]
机构
[1] Univ Utah, Coll Engn, Dept Bioengn, Salt Lake City, UT 84112 USA
[2] Univ Utah, Coll Pharm, Dept Med Chem, Salt Lake City, UT 84112 USA
[3] Univ Utah, Coll Pharm, Dept Pharmaceut & Pharmaceut Chem, Salt Lake City, UT 84112 USA
关键词
D O I
10.1021/jp8001614
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
Alkali (Li+, Na+, K+, Rb+, and Cs+) and halide (F-, Cl-, Br-, and I-) ions play an important role in many biological phenomena, roles that range from stabilization of biomolecular structure, to influence on biomolecular dynamics, to key physiological influence on homeostasis and signaling. To properly model ionic interaction and stability in atomistic simulations of biomolecular structure, dynamics, folding, catalysis, and function, an accurate model or representation of the monovalent ions is critically necessary. A good model needs to simultaneously reproduce many properties of ions, including their structure, dynamics, solvation, and moreover both the interactions of these ions with each other in the crystal and in solution and the interactions of ions with other molecules. At present, the best force fields for biomolecules employ a simple additive, nonpolarizable, and pairwise potential for atomic interaction. In this work, we describe our efforts to build better models of the monovalent ions within the pairwise Coulombic and 6-12 Lennard-Jones framework, where the models are tuned to balance crystal and solution properties in Ewald simulations with specific choices of well-known water models. Although it has been clearly demonstrated that truly accurate treatments of ions will require inclusion of nonadditivity and polarizability (particularly with the anions) and ultimately even a quantum mechanical treatment, our goal was to simply push the limits of the additive treatments to see if a balanced model could be created. The applied methodology is general and can be extended to other ions and to polarizable force-field models. Our starting point centered on observations from long simulations of biomolecules in salt solution with the AMBER force fields where salt crystals formed well below their solubility limit. The likely cause of the artifact in the AMBER parameters relates to the naive mixing of the Smith and Dang chloride parameters with AMBER-adapted Aqvist cation parameters. To provide a more appropriate balance, we reoptimized the parameters of the Lennard-Jones potential for the ions and specific choices of water models. To validate and optimize the parameters, we calculated hydration free energies of the solvated ions and also lattice energies (LE) and lattice constants (LC) of alkali halide salt crystals. This is the first effort that systematically scans across the Lennard-Jones space (well depth and radius) while balancing ion properties like LE and LC across all pair combinations of the alkali ions and halide ions. The optimization across the entire monovalent series avoids systematic deviations. The ion parameters developed, optimized, and characterized were targeted for use with some of the most commonly used rigid and nonpolarizable water models, specifically TIP3P, TIP4P(EW), and SPC/E. In addition to well reproducing the solution and crystal properties, the new ion parameters well reproduce binding energies of the ions to water and the radii of the first hydration shells.
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收藏
页码:9020 / 9041
页数:22
相关论文
共 186 条
[1]   Ions in water: From ion clustering to crystal nucleation [J].
Alejandre, Jose ;
Hansen, Jean-Pierre .
PHYSICAL REVIEW E, 2007, 76 (06)
[2]  
Allen M. P., 2009, Computer Simulation of Liquids
[3]  
[Anonymous], VERHANDL DEUT PHYS G
[4]  
[Anonymous], 1919, VERHANDL DEUT PHYS G
[5]  
AQVIST J, 1990, J PHYS CHEM-US, V94, P8021, DOI 10.1021/j100384a009
[6]  
AQVIST J, 1994, J PHYS CHEM-US, V98, P8253, DOI 10.1021/j100084a049
[7]   Absolute hydration free energies of ions, ion-water clusters, and quasichemical theory [J].
Asthagiri, D ;
Pratt, LR ;
Ashbaugh, HS .
JOURNAL OF CHEMICAL PHYSICS, 2003, 119 (05) :2702-2708
[8]   Anion binding to nucleic acids [J].
Auffinger, P ;
Bielecki, L ;
Westhof, E .
STRUCTURE, 2004, 12 (03) :379-388
[9]   Spontaneous formation of KCl aggregates in biomolecular simulations: A force field issue? [J].
Auffinger, Pascal ;
Cheatham, Thomas E., III ;
Vaiana, Andrea C. .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2007, 3 (05) :1851-1859
[10]   COMPUTER-SIMULATION STUDY OF THE MEAN FORCES BETWEEN FERROUS AND FERRIC IONS IN WATER [J].
BADER, JS ;
CHANDLER, D .
JOURNAL OF PHYSICAL CHEMISTRY, 1992, 96 (15) :6423-6427