J. Phys. Chem. B, 105 ( 30 ), 7291 - 7298 , 2001 . 10.1021/jp011102u S1089-5647(01)01102-6
Web Release Date: July 3, 2001

Copyright © 2001 American Chemical Society

Optimization of Parameters in Macromolecular Potential Energy Functions by Conformational Space Annealing

Jooyoung Lee, Daniel R. Ripoll, Cezary Czaplewski, Jarosaw Pillardy, William J. Wedemeyer, and Harold A. Scheraga*

Baker Laboratory of Chemistry and Chemical Biology, Cornell University, Ithaca, New York 14853-1301, Program of Computational Sciences, Korea Institute for Advanced Study, Seoul 130-012, Korea, Cornell Theory Center, Ithaca, New York 14853-3801, and Faculty of Chemistry, University of Gdask, Sobieskiego 18, 80-952 Gdask, Poland

Received: March 22, 2001

In Final Form: June 4, 2001

Abstract:

A general protocol for refining the parameters of macromolecular potential energy functions by optimizing criteria that compare nativelike and nonnative conformations of one or more benchmark protein(s) is described. The protocol exploits the high efficiency of conformational space annealing (CSA) in finding the lowest-energy conformation of an isolated macromolecule. A novel form of the CSA method, local CSA, is introduced to provide better sampling of nativelike conformations. The computational expense of the protocol is reduced significantly by a linear approximation that estimates the energy of the (reminimized) native and nonnative conformations after every change of the force field parameters. The protocol is illustrated by optimizing the parameters of two force fields used in the CASP3 and CASP4 experiments, respectively. Another version of this general protocol (with different optimization criteria and optimization methods) was used to determine the parameters for the , and / force fields used in the CASP4 experiment, as reported in a companion publication (J. Pillardy et al. J. Phys. Chem. B 2001, 105, 7299).