Literature DB >> 15185325

Accuracy of free energies of hydration using CM1 and CM3 atomic charges.

Marina Udier-Blagović1, Patricia Morales De Tirado, Shoshannah A Pearlman, William L Jorgensen.   

Abstract

Absolute free energies of hydration (DeltaGhyd) have been computed for 25 diverse organic molecules using partial atomic charges derived from AM1 and PM3 wave functions via the CM1 and CM3 procedures of Cramer, Truhlar, and coworkers. Comparisons are made with results using charges fit to the electrostatic potential surface (EPS) from ab initio 6-31G* wave functions and from the OPLS-AA force field. OPLS Lennard-Jones parameters for the organic molecules were used together with the TIP4P water model in Monte Carlo simulations with free energy perturbation theory. Absolute free energies of hydration were computed for OPLS united-atom and all-atom methane by annihilating the solutes in water and in the gas phase, and absolute DeltaGhyd values for all other molecules were computed via transformation to one of these references. Optimal charge scaling factors were determined by minimizing the unsigned average error between experimental and calculated hydration free energies. The PM3-based charge models do not lead to lower average errors than obtained with the EPS charges for the subset of 13 molecules in the original study. However, improvement is obtained by scaling the CM1A partial charges by 1.14 and the CM3A charges by 1.15, which leads to average errors of 1.0 and 1.1 kcal/mol for the full set of 25 molecules. The scaled CM1A charges also yield the best results for the hydration of amides including the E/Z free-energy difference for N-methylacetamide in water. Copyright 2004 Wiley Periodicals, Inc.

Entities:  

Year:  2004        PMID: 15185325     DOI: 10.1002/jcc.20059

Source DB:  PubMed          Journal:  J Comput Chem        ISSN: 0192-8651            Impact factor:   3.376


  38 in total

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4.  Potential energy functions for atomic-level simulations of water and organic and biomolecular systems.

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6.  Perspective on Free-Energy Perturbation Calculations for Chemical Equilibria.

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7.  Hydration Properties and Solvent Effects for All-Atom Solutes in Polarizable Coarse-Grained Water.

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8.  Quantum and Molecular Mechanical (QM/MM) Monte Carlo Techniques for Modeling Condensed-Phase Reactions.

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9.  Energetics of displacing water molecules from protein binding sites: consequences for ligand optimization.

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10.  Solvation Effect on the Conformations of Alanine Dipeptide: Integral Equation Approach.

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