The hydrophobic insertion mechanism of membrane curvature generation by proteins

被引:325
作者
Campelo, Felix [1 ,2 ]
McMahon, Harvey T. [3 ]
Kozlov, Michael M. [1 ]
机构
[1] Tel Aviv Univ, Sackler Fac Med, Dept Physiol & Pharmacol, IL-69978 Tel Aviv, Israel
[2] Univ Barcelona, Fac Fis, Dept Estructura & Constituents Mat, E-08028 Barcelona, Spain
[3] MRC, Mol Biol Lab, Cambridge CB2 2QH, England
基金
英国医学研究理事会;
关键词
D O I
10.1529/biophysj.108.133173
中图分类号
Q6 [生物物理学];
学科分类号
071011 [生物物理学];
摘要
A wide spectrum of intracellular processes is dependent on the ability of cells to dynamically regulate membrane shape. Membrane bending by proteins is necessary for the generation of intracellular transport carriers and for the maintenance of otherwise intrinsically unstable regions of high membrane curvature in cell organelles. Understanding the mechanisms by which proteins curve membranes is therefore of primary importance. Here we suggest, for the first time to our knowledge, a quantitative mechanism of lipid membrane bending by hydrophobic or amphipathic rodlike inclusions which simulate amphipathic alpha-helices - structures shown to sculpt membranes. Considering the lipid monolayer matrix as an anisotropic elastic material, we compute the intramembrane stresses and strains generated by the embedded inclusions, determine the resulting membrane shapes, and the accumulated elastic energy. We characterize the ability of an inclusion to bend membranes by an effective spontaneous curvature, and show that shallow rodlike inclusions are more effective in membrane shaping than are lipids having a high propensity for curvature. Our computations provide experimentally testable predictions on the protein amounts needed to generate intracellular membrane shapes for various insertion depths and membrane thicknesses. We also predict that the ability of N-BAR domains to produce membrane tubules in vivo can be ascribed solely to insertion of their amphipathic helices.
引用
收藏
页码:2325 / 2339
页数:15
相关论文
共 57 条
[1]
N-terminal hydrophobic residues of the G-protein ADP-ribosylation factor-1 insert into membrane phospholipids upon GDP to GTP exchange [J].
Antonny, B ;
BeraudDufour, S ;
Chardin, P ;
Chabre, M .
BIOCHEMISTRY, 1997, 36 (15) :4675-4684
[2]
Membrane deformation by protein coats [J].
Antonny, Bruno .
CURRENT OPINION IN CELL BIOLOGY, 2006, 18 (04) :386-394
[3]
Interaction between inclusions embedded in membranes [J].
ArandaEspinoza, H ;
Berman, A ;
Dan, N ;
Pincus, P ;
Safran, S .
BIOPHYSICAL JOURNAL, 1996, 71 (02) :648-656
[4]
Direct observation of Bin/amphiphysin/Rvs (BAR) domain-induced membrane curvature by means of molecular dynamics simulations [J].
Blood, Philip D. ;
Voth, Gregory A. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (41) :15068-15072
[5]
Coupling of coat assembly and vesicle budding to packaging of putative cargo receptors [J].
Bremser, M ;
Nickel, W ;
Schweikert, M ;
Ravazzola, M ;
Amherdt, M ;
Hughes, CA ;
Söllner, TH ;
Rothman, JE ;
Wieland, FT .
CELL, 1999, 96 (04) :495-506
[6]
Dynamin is membrane-active: Lipid insertion is induced by phosphoinositides and phosphatidic acid [J].
Burger, KNJ ;
Demel, RA ;
Schmid, SL ;
de Kruijff, B .
BIOCHEMISTRY, 2000, 39 (40) :12485-12493
[7]
The influence of cholesterol on phospholipid membrane curvature and bending elasticity [J].
Chen, Z ;
Rand, RP .
BIOPHYSICAL JOURNAL, 1997, 73 (01) :267-276
[8]
Statistical thermodynamics of membrane bending-mediated protein-protein attractions [J].
Chou, T ;
Kim, KS ;
Oster, G .
BIOPHYSICAL JOURNAL, 2001, 80 (03) :1075-1087
[9]
Architectural and mechanistic insights into an EHD ATPase involved in membrane remodelling [J].
Daumke, Oliver ;
Lundmark, Richard ;
Vallis, Yvonne ;
Martens, Sascha ;
Butler, P. Jonathan G. ;
McMahon, Harvey T. .
NATURE, 2007, 449 (7164) :923-U15
[10]
Is lipid translocation involved during endo- and exocytosis? [J].
Devaux, PF .
BIOCHIMIE, 2000, 82 (05) :497-509