Membrane interactions of mutated forms of the influenza fusion peptide

被引:45
|
作者
Epand, RM [1 ]
Epand, RF
Martin, I
Ruysschaert, JM
机构
[1] McMaster Univ, Dept Biochem, Hamilton, ON L8N 3Z5, Canada
[2] Free Univ Brussels, B-1050 Brussels, Belgium
关键词
D O I
10.1021/bi0107187
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
We have studied a group of fusion peptides of influenza hemagglutinin in which the N-terminal amino acid, Gly (found in the wild-type peptide), has been systematically substituted with Ala, Ser, Val, or Glu. The activity of the intact hemagglutinin protein with these same substitutions has already been reported. As a measure of the extent of modulation of intrinsic membrane curvature by these peptides, we determined their effects on the polymorphic phase transition of dipalmitoleoylphosphatidylethanolamine. The wild-type peptide is the only one that. at pH 5, can substantially decrease the temperature of this transition. This is also the only form in which the intact protein promotes contents mixing in cells. The Ala and Ser mutant hemagglutinins exhibit a hemifusion phenotype, and their fusion peptides have little effect on lipid polymorphism at low pH. The two mutant proteins that are completely fusion inactive are the Val and Glu mutant hemagglutinins. The fusion peptides from these forms significantly increase the polymorphic phase transition temperature at low pH. We find that the effect of the fusion peptides on membrane curvature, as monitored by a shift in the temperature of this polymorphic phase transition, correlates better with the fusogenic activities of the corresponding protein than do measurements of the isotropic P-31 NMR signals or the ability to induce the fusion of liposomes. The inactivity of the hemagglutinin protein with the hydrophobic Val mutation can be explained by the change in the angle of membrane insertion of the helical fusion peptide as measured by polarized FTIR. Thus, the nature of the interactions of the fusion peptides with membranes can, in large part, explain the differences in the fusogenic activity of the intact protein.
引用
收藏
页码:8800 / 8807
页数:8
相关论文
共 50 条
  • [21] Membrane fusion by influenza hemagglutinin
    Skehel, JJ
    Bizebard, T
    Bullough, PA
    Hughson, FM
    Knossow, M
    Steinhauer, DA
    Wharton, SA
    Wiley, DC
    COLD SPRING HARBOR SYMPOSIA ON QUANTITATIVE BIOLOGY, 1995, 60 : 573 - 580
  • [22] Membrane fusion: The influenza paradigm
    White, JM
    COLD SPRING HARBOR SYMPOSIA ON QUANTITATIVE BIOLOGY, 1995, 60 : 581 - 588
  • [23] Membrane fusion by the influenza hemagglutinin: The fusion pore
    White, JM
    Danieli, T
    Henis, YI
    Melikyan, G
    Cohen, FS
    ORGANELLAR ION CHANNELS AND TRANSPORTERS, 1996, 51 : 223 - 229
  • [24] Membrane fusion by the influenza hemagglutinin: The fusion pore
    White, J
    Danieli, T
    Henis, Y
    Melikyan, G
    Cohen, F
    JOURNAL OF GENERAL PHYSIOLOGY, 1995, 106 (06): : 17 - 17
  • [25] Implicit solvent model studies of the interactions of the influenza hemagglutinin fusion peptide with lipid bilayers
    Bechor, D
    Ben-Tal, N
    BIOPHYSICAL JOURNAL, 2001, 80 (02) : 643 - 655
  • [26] Planar aggregation of the influenza viral fusion peptide alters membrane structure and promotes poration
    Pastor, Richard
    Rice, Amy
    Blank, Paul
    Zimmerberg, Joshua
    JOURNAL OF PEPTIDE SCIENCE, 2024, 30
  • [28] Three conserved residues of influenza fusion peptide alter its behavior at the membrane interface
    Worch, R.
    Filipek, A.
    Krupa, J.
    Szymaniec, A.
    Setny, P.
    EUROPEAN BIOPHYSICS JOURNAL WITH BIOPHYSICS LETTERS, 2017, 46 : S392 - S392
  • [29] Impact of the influenza hemagglutinin fusion peptide on membrane structure from molecular dynamics simulations
    Lague, Patrick
    Marchand, Pavillon C. E.
    Roux, Benoit
    Pastor, Richard W.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2006, 231
  • [30] Conformational Sampling of Influenza Fusion Peptide in Membrane Bilayers as a Function of Termini and Protonation States
    Panahi, Afra
    Feig, Michael
    BIOPHYSICAL JOURNAL, 2010, 98 (03) : 671A - 671A