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PMID: 27807980 Published · ppublish English Journal Article Research Support, N.I.H., Intramural Research Support, Non-U.S. Gov't

Convergence and Sampling in Determining Free Energy Landscapes for Membrane Protein Association.

The journal of physical chemistry. B ·Vol. 121 ·No. 15 ·2017-00-20 ·Pages 3364-3375

Domański J, Hedger G, Best RB, Stansfeld PJ, Sansom MSP

Abstract

Potential of mean force (PMF) calculations are used to characterize the free energy landscape of protein-lipid and protein-protein association within membranes. Coarse-grained simulations allow binding free energies to be determined with reasonable statistical error. This accuracy relies on defining a good collective variable to describe the binding and unbinding transitions, and upon criteria for assessing the convergence of the simulation toward representative equilibrium sampling. As examples, we calculate protein-lipid binding PMFs for ANT/cardiolipin and Kir2.2/PIP2, using umbrella sampling on a distance coordinate. These highlight the importance of replica exchange between windows for convergence. The use of two independent sets of simulations, initiated from bound and unbound states, provide strong evidence for simulation convergence. For a model protein-protein interaction within a membrane, center-of-mass distance is shown to be a poor collective variable for describing transmembrane helix-helix dimerization. Instead, we employ an alternative intermolecular distance matrix RMS (DRMS) coordinate to obtain converged PMFs for the association of the glycophorin transmembrane domain. While the coarse-grained force field gives a reasonable Kd for dimerization, the majority of the bound population is revealed to be in a near-native conformation. Thus, the combination of a refined reaction coordinate with improved sampling reveals previously unnoticed complexities of the dimerization free energy landscape. We propose the use of replica-exchange umbrella sampling starting from different initial conditions as a robust approach for calculation of the binding energies in membrane simulations.

MeSH Terms
Lipid Bilayers/chemistry Lipids/chemistry Membrane Proteins/chemistry Molecular Dynamics Simulation Protein Binding Thermodynamics
Chemicals
Lipid Bilayers Lipids Membrane Proteins
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Domański Jan
Department of Biochemistry, University of Oxford , South Parks Road, Oxford OX1 3QU, U.K. | Laboratory of Chemical Physics, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health , Bethesda, Maryland 20892-0520, United States.
Hedger George
Department of Biochemistry, University of Oxford , South Parks Road, Oxford OX1 3QU, U.K.
Best Robert B
Laboratory of Chemical Physics, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health , Bethesda, Maryland 20892-0520, United States.
Stansfeld Phillip J
Department of Biochemistry, University of Oxford , South Parks Road, Oxford OX1 3QU, U.K.
Sansom Mark S P ORCID
Department of Biochemistry, University of Oxford , South Parks Road, Oxford OX1 3QU, U.K.
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Article Info
Journal
The journal of physical chemistry. B
Abbr.
J Phys Chem B
ISSN
1520-5207
Published
2017-00-20
Epub
2016-00-17
Pages
3364-3375
Language
English
Region
United States
NLM ID
101157530
PMCID
PMC5402295
Subset
IM
Grants
Wellcome Trust · United Kingdom
Biotechnology and Biological Sciences Research Council · BB/L002558/1 · United Kingdom
Wellcome Trust · WT100946AIA · United Kingdom
Medical Research Council · United Kingdom
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