Interactions of α-helices with lipid bilayers:: a review of simulation studies

被引:97
作者
Biggin, PC
Sansom, MSP
机构
[1] Salk Inst Biol Studies, La Jolla, CA 92109 USA
[2] Univ Oxford, Dept Biochem, Mol Biophys Lab, Oxford OX1 3QU, England
基金
英国惠康基金;
关键词
D O I
10.1016/S0301-4622(98)00233-6
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Membrane proteins, of which the majority seem to contain one or more alpha-helix, constitute approx. 30% of most genomes. A complete understanding of the nature of helix/bilayer interactions is necessary for an understanding of the structural principles underlying membrane proteins. This review describes computer simulation studies of helix/bilayer interactions. Key experimental studies of the interactions of alpha-helices and lipid bilayers are briefly reviewed. Surface associated helices are found in some membrane-bound enzymes (e.g. prostaglandin synthase), and as stages in the mechanisms of antimicrobial peptides and of pore-forming bacterial toxins. Transmembrane alpha-helices are found in most integral membrane proteins, and also in channels formed by amphipathic peptides or by bacterial toxins. Mean field simulations, in which the lipid bilayer is approximated as a hydrophobic continuum, have been used in studies of membrane-active peptides (e.g, alamethicin, melittin, magainin and dermaseptin) and of simple membrane proteins (e.g. phage Pf1 coat protein). All atom molecular dynamics simulations of fully solvated bilayers with transmembrane helices have been applied to: the constituent helices of bacteriorhodopsin; peptide-16 (a simple model TM helix); and a number of pore-lining helices from ion channels. Surface associated helices (e.g. melittin and dermaseptin) have been simulated, as have alpha-helical bundles such as bacteriorhodopsin and alamethicin. From comparison of the results from the two classes of simulation, it emerges that a major theoretical challenge is to exploit the results of all atom simulations in order to improve the mean field approach. (C) 1999 Elsevier Science B.V. All rights reserved.
引用
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页码:161 / 183
页数:23
相关论文
共 154 条
  • [71] LAROCCA P, 1999, IN PRESS BIOPHYS CHE
  • [72] LAROCCA P, 1997, PROTEIN SCI, V6, P54
  • [73] Transmembrane movement of the Shaker K+ channel S4
    Larsson, HP
    Baker, OS
    Dhillon, DS
    Isacoff, EY
    [J]. NEURON, 1996, 16 (02) : 387 - 397
  • [74] SYNTHETIC AMPHIPHILIC PEPTIDE MODELS FOR PROTEIN ION CHANNELS
    LEAR, JD
    WASSERMAN, ZR
    DEGRADO, WF
    [J]. SCIENCE, 1988, 240 (4856) : 1177 - 1181
  • [75] LI J, 1992, CURR OPIN STRUC BIOL, V2, P545
  • [76] GLYCINE AND BETA-BRANCHED RESIDUES SUPPORT AND MODULATE PEPTIDE HELICITY IN MEMBRANE ENVIRONMENTS
    LI, SC
    DEBER, CM
    [J]. FEBS LETTERS, 1992, 311 (03) : 217 - 220
  • [77] LIAO MJ, 1984, J BIOL CHEM, V259, P4200
  • [78] SPATIAL STRUCTURE OF (34 65) BACTERIOOPSIN POLYPEPTIDE IN SDS MICELLES DETERMINED FROM NUCLEAR-MAGNETIC-RESONANCE DATA
    LOMIZE, AL
    PERVUSHIN, KV
    ARSENIEV, AS
    [J]. JOURNAL OF BIOMOLECULAR NMR, 1992, 2 (04) : 361 - 372
  • [79] COOPERATIVE MEMBRANE INSERTION OF MAGAININ CORRELATED WITH ITS CYTOLYTIC ACTIVITY
    LUDTKE, SJ
    HE, K
    WU, YL
    HUANG, HW
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 1994, 1190 (01): : 181 - 184
  • [80] Membrane pores induced by magainin
    Ludtke, SJ
    He, K
    Heller, WT
    Harroun, TA
    Yang, L
    Huang, HW
    [J]. BIOCHEMISTRY, 1996, 35 (43) : 13723 - 13728