Macromolecular Entropy Can Be Accurately Computed from Force

Abstract:

A method is presented to evaluate a molecule’s entropy from the atomic forces calculated in a molecular dynamics simulation. Specifically, diagonalization of the mass-weighted force covariance matrix produces eigenvalues which in the harmonic approximation can be related to vibrational frequencies. The harmonic oscillator entropies of each vibrational mode may be summed to give the total entropy. The results for a series of hydrocarbons, dialanine and a β hairpin are found to agree much better with values derived from thermodynamic integration than results calculated using quasiharmonic analysis. Forces are found to follow a harmonic distribution more closely than coordinate displacements and better capture the underlying potential energy surface. The method’s accuracy, simplicity, and computational similarity to quasiharmonic analysis, requiring as input force trajectories instead of coordinate trajectories, makes it readily applicable to a wide range of problems.

SEEK ID: https://publications.h-its.org/publications/1503

DOI: 10.1021/ct500684w

Research Groups: Molecular Biomechanics

Publication type: Journal

Journal: Journal of Chemical Theory and Computation

Publisher: American Chemical Society (ACS)

Citation: Journal of Chemical Theory and Computation,10(11):4777-4781

Date Published: 15th Oct 2014

URL:

Registered Mode: manually

Authors: Ulf Hensen, Frauke Gräter, Richard H. Henchman

help Submitter
Citation
Hensen, U., Gräter, F., & Henchman, R. H. (2014). Macromolecular Entropy Can Be Accurately Computed from Force. In Journal of Chemical Theory and Computation (Vol. 10, Issue 11, pp. 4777–4781). American Chemical Society (ACS). https://doi.org/10.1021/ct500684w
Activity

Views: 3081

Created: 26th Jul 2022 at 00:28

Last updated: 5th Mar 2024 at 21:24

help Tags

This item has not yet been tagged.

help Attributions

None

Powered by
(v.1.14.2)
Copyright © 2008 - 2023 The University of Manchester and HITS gGmbH