On the nonpolar hydration free energy of proteins: Surface area and continuum solvent models for the solute-solvent interaction energy

被引:234
作者
Levy, RM [1 ]
Zhang, LY [1 ]
Gallicchio, E [1 ]
Felts, AK [1 ]
机构
[1] Rutgers State Univ, Dept Chem & Biol Chem, Piscataway, NJ 08854 USA
关键词
D O I
10.1021/ja029833a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Implicit solvent hydration free energy models are an important component of most modern computational methods aimed at protein structure prediction, binding affinity prediction, and modeling of conformational equilibria. The nonpolar component of the hydration free energy, consisting of a repulsive cavity term and an attractive van der Waals solute-solvent interaction term, is often modeled using estimators based on the solvent exposed solute surface area. In this paper, we analyze the accuracy of linear surface area models for predicting the van der Waals solute-solvent interaction energies of native and non-native protein conformations, peptides and small molecules, and the clesolvation penalty of protein-protein and protein-ligand binding complexes. The target values are obtained from explicit solvent simulations and from a continuum solvent van der Waals interaction energy model. The results indicate that the standard surface area model, while useful on a coarse-grained scale, may not be accurate or transferable enough for high resolution modeling studies of protein folding and binding. The continuum model constructed in the course of this study provides one path for the development of a computationally efficient implicit solvent nonpolar hydration free energy estimator suitable for high-resolution structural and thermodynamic modeling of biological macromolecules.
引用
收藏
页码:9523 / 9530
页数:8
相关论文
共 75 条
  • [1] Calculation of conformational transitions and barriers in solvated systems: Application to the alanine dipeptide in water
    Apostolakis, J
    Ferrara, P
    Caflisch, A
    [J]. JOURNAL OF CHEMICAL PHYSICS, 1999, 110 (04) : 2099 - 2108
  • [2] A "universal" surface area correlation for molecular hydrophobic phenomena
    Ashbaugh, HS
    Kaler, EW
    Paulaitis, ME
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1999, 121 (39) : 9243 - 9244
  • [3] Hydration and conformational equilibria of simple hydrophobic and amphiphilic solutes
    Ashbaugh, HS
    Kaler, EW
    Paulaitis, ME
    [J]. BIOPHYSICAL JOURNAL, 1998, 75 (02) : 755 - 768
  • [4] Ben-Naim A., 1980, HYDROPHOBIC INTERACT
  • [5] VANDERWAALS PICTURE OF LIQUIDS, SOLIDS, AND PHASE-TRANSFORMATIONS
    CHANDLER, D
    WEEKS, JD
    ANDERSEN, HC
    [J]. SCIENCE, 1983, 220 (4599) : 787 - 794
  • [6] HYDROPHOBIC BONDING AND ACCESSIBLE SURFACE-AREA IN PROTEINS
    CHOTHIA, C
    [J]. NATURE, 1974, 248 (5446) : 338 - 339
  • [7] Electrostatic component of solvation:: Comparison of SCRF continuum models
    Curutchet, C
    Cramer, CJ
    Truhlar, DG
    Ruiz-López, MF
    Rinaldi, D
    Orozco, M
    Luque, FJ
    [J]. JOURNAL OF COMPUTATIONAL CHEMISTRY, 2003, 24 (03) : 284 - 297
  • [8] DOMINANT FORCES IN PROTEIN FOLDING
    DILL, KA
    [J]. BIOCHEMISTRY, 1990, 29 (31) : 7133 - 7155
  • [9] Computer simulation of protein-protein interactions
    Elcock, AH
    Sept, D
    McCammon, JA
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2001, 105 (08) : 1504 - 1518
  • [10] Distinguishing native conformations of proteins from decoys with an effective free energy estimator based on the OPLS all-atom force field and the surface generalized born solvent model
    Felts, AK
    Gallicchio, E
    Wallqvist, A
    Levy, RM
    [J]. PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2002, 48 (02) : 404 - 422