A generalized Born formalism for heterogeneous dielectric environments: Application to the implicit modeling of biological membranes
- 22 March 2005
- journal article
- conference paper
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 122 (12) , 124706
- https://doi.org/10.1063/1.1865992
Abstract
Reliable computer simulations of complex biological environments such as integral membrane proteins with explicit water and lipid molecules remain a challenging task. We propose a modification of the standard generalized Born theory of homogeneous solvent for modeling the heterogeneous dielectric environments such as lipid/water interfaces. Our model allows the representation of biological membranes in the form of multiple layered dielectric regions with dielectric constants that are different from the solute cavity. The proposed new formalism is shown to predict the electrostatic component of solvation free energy with a relative error of 0.17% compared to exact finite-difference solutions of the Poisson equation for a transmembrane helix test system. Molecular dynamics simulations of melittin and bacteriorhodopsin are carried out and performed over and of simulation time, respectively. The center of melittin along the membrane normal in these stable simulations is in excellent agreement with the relevant experimental data. Simulations of bacteriorhodopsin started from the experimental structure remained stable and in close agreement with experiment. We also examined the free energy profiles of water and amino acid side chain analogs upon membrane insertion. The results with our implicit membrane model agree well with the experimental transfer free energy data from cyclohexane to water as well as explicit solvent simulations of water and selected side chain analogs.
Keywords
This publication has 100 references indexed in Scilit:
- Introducing an Implicit Membrane in Generalized Born/Solvent Accessibility Continuum Solvent ModelsThe Journal of Physical Chemistry B, 2002
- Molecular Dynamics Study of Bacteriorhodopsin and the Purple MembraneThe Journal of Physical Chemistry B, 2001
- Continuum solvation model: Computation of electrostatic forces from numerical solutions to the Poisson-Boltzmann equationPublished by Elsevier ,1999
- Folding of amphipathic α-helices on membranes: energetics of helix formation by melittin 1 1Edited by D. ReesJournal of Molecular Biology, 1999
- The Preference of Tryptophan for Membrane InterfacesBiochemistry, 1998
- All-Atom Empirical Potential for Molecular Modeling and Dynamics Studies of ProteinsThe Journal of Physical Chemistry B, 1998
- Hydration free energy of waterThe Journal of Physical Chemistry, 1995
- Non-random Distribution of Amino Acids in the Transmembrane Segments of Human Type I Single Span Membrane ProteinsJournal of Molecular Biology, 1993
- CHARMM: A program for macromolecular energy, minimization, and dynamics calculationsJournal of Computational Chemistry, 1983
- Volumen und Hydratationswärme der IonenThe European Physical Journal A, 1920