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PMID: 18065451 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Protein diffusion on charged membranes: a dynamic mean-field model describes time evolution and lipid reorganization.

Biophysical journal ·Vol. 94 ·No. 7 ·2008-04-01 ·Pages 2580-97

Khelashvili G, Weinstein H, Harries D

Abstract

As charged macromolecules adsorb and diffuse on cell membranes in a large variety of cell signaling processes, they can attract or repel oppositely charged lipids. This results in lateral membrane rearrangement and affects the dynamics of protein function. To address such processes quantitatively we introduce a dynamic mean-field scheme that allows self-consistent calculations of the equilibrium state of membrane-protein complexes after such lateral reorganization of the membrane components, and serves to probe kinetic details of the process. Applicable to membranes with heterogeneous compositions containing several types of lipids, this comprehensive method accounts for mobile salt ions and charged macromolecules in three dimensions, as well as for lateral demixing of charged and net-neutral lipids in the membrane plane. In our model, the mobility of membrane components is governed by the diffusion-like Cahn-Hilliard equation, while the local electrochemical potential is based on nonlinear Poisson-Boltzmann theory. We illustrate the method by applying it to the adsorption of the anionic polypeptide poly-Lysine on negatively charged lipid membranes composed of binary mixtures of neutral and monovalent lipids, or onto ternary mixtures of neutral, monovalent, and multivalent lipids. Consistent with previous calculations and experiments, our results show that at steady-state multivalent lipids (such as PIP(2)), but not monovalent lipid (such as phosphatidylserine), will segregate near the adsorbing macromolecules. To address the corresponding diffusion of the adsorbing protein in the membrane plane, we couple lipid mobility with the propagation of the adsorbing protein through a dynamic Monte Carlo scheme. We find that due to their higher mobility dictated by the electrochemical potential, multivalent lipids such as PIP(2) more quickly segregate near oppositely charged proteins than do monovalent lipids, even though their diffusion constants may be similar. The segregation, in turn, slows protein diffusion, as lipids introduce an effective drag on the motion of the adsorbate. In contrast, monovalent lipids such as phosphatidylserine only weakly segregate, and the diffusions of protein and lipid remain largely uncorrelated.

MeSH Terms
Adsorption Cell Membrane/chemistry Computer Simulation Diffusion Lipid Bilayers/chemistry Membrane Fluidity Membrane Proteins/chemistry,ultrastructure Models, Biological Models, Chemical Models, Molecular Polylysine Static Electricity
Chemicals
Lipid Bilayers Membrane Proteins Polylysine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Khelashvili George
Department of Physiology and Biophysics, Weill Medical College of Cornell University, New York, New York, USA. gek2009@med.cornell.edu
Weinstein Harel
Harries Daniel
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Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
1542-0086
Published
2008-04-01
Epub
2007-00-07
Pages
2580-97
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC2267151
Subset
IM
Grants
NIDA NIH HHS · P01 DA012408 · United States
NIDA NIH HHS · P01 DA012923 · United States
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