Critical Importance of Length-Scale Dependence in Implicit Modeling of Hydrophobic Interactions
- 9 February 2007
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 129 (9) , 2444-2445
- https://doi.org/10.1021/ja068383+
Abstract
The existence of length-scale dependence of hydrophobic solvation has important implications in the equilibrium of disordered, partially folded, and folded protein conformations. Neglecting this dependence, such as in popular solute surface-area based implicit solvent models with fixed surface tension coefficients, severely limits the ability to accurately model protein conformational equilibrium. We illustrate such fundamental limitations by examining the potentials of mean force of forming dimeric and trimeric nonpolar clusters and propose a new empirical model that effectively captures the context dependence of the local effective surface tension. Further optimization of the new model with other components of the implicit solvent force fields provides promise to significantly improve one's ability to simulate protein folding and conformational transitions.Keywords
This publication has 17 references indexed in Scilit:
- Assessing implicit models for nonpolar mean solvation forces: The importance of dispersion and volume termsProceedings of the National Academy of Sciences, 2006
- Coupling Hydrophobicity, Dispersion, and Electrostatics in Continuum Solvent ModelsPhysical Review Letters, 2006
- Balancing Solvation and Intramolecular Interactions: Toward a Consistent Generalized Born Force FieldJournal of the American Chemical Society, 2006
- Interfaces and the driving force of hydrophobic assemblyNature, 2005
- Recent advances in the development and application of implicit solvent models in biomolecule simulationsCurrent Opinion in Structural Biology, 2004
- MOLECULARTHEORY OFHYDROPHOBICEFFECTS: “She is too mean to have her name repeated.”Annual Review of Physical Chemistry, 2002
- All-Atom Empirical Potential for Molecular Modeling and Dynamics Studies of ProteinsThe Journal of Physical Chemistry B, 1998
- Simulations of peptide conformational dynamics and thermodynamicsChemical Reviews, 1993
- Semianalytical treatment of solvation for molecular mechanics and dynamicsJournal of the American Chemical Society, 1990
- A scaled particle theory of aqueous and nonaqueous solutionsChemical Reviews, 1976