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Structural study of the interaction between the SIV fusion peptide and model membranes

A Colotto1, I Martin, J M Ruysschaert

  • 1Department of Biochemistry, McMaster University, Hamilton, Ontario, Canada.

Biochemistry
|January 23, 1996
PubMed

Insights

Synthetic peptides from simian immunodeficiency virus gp32 (SIV) show that oblique membrane insertion correlates with fusogenic activity. Different peptide orientations induce distinct structural changes in lipid bilayers, impacting membrane fusion.

Area of Science:

  • Biophysics
  • Membrane Biology
  • Structural Biology

Background:

  • Fusogenicity of viral envelope proteins is crucial for membrane fusion.
  • The N-terminal segment of simian immunodeficiency virus gp32 (SIV) is implicated in fusion.
  • Understanding peptide-lipid interactions is key to deciphering membrane fusion mechanisms.

Purpose of the Study:

  • To investigate the structural effects of SIV fusion peptides with different bilayer insertion orientations.
  • To correlate peptide orientation and structural membrane changes with fusogenic activity.
  • To elucidate the biophysical mechanisms underlying membrane fusion and inhibition.

Main Methods:

  • X-ray diffraction analysis of synthetic wild-type (SIVwt) and mutant (SIVmutV) SIV gp32 peptides in model lipid systems.
  • Investigation of structural alterations including phase transitions, vesicle morphology, and phase parameter changes.
  • Analysis of monolayer curvature induction by peptides.

Main Results:

  • SIVwt peptide, inserting obliquely, induced bilayer disordering and altered phase behavior, consistent with fusogenicity.
  • SIVmutV peptide, inserting along the bilayer normal, induced positive monolayer curvature and was nonfusogenic.
  • Both peptides induced distinct structural modifications in lipid bilayers, dependent on the lipid system.

Conclusions:

  • Peptide orientation dictates structural effects on lipid bilayers and subsequent fusogenic potential.
  • Oblique insertion and negative monolayer curvature promote fusion, while normal insertion and positive curvature inhibit it.
  • A model correlating peptide-induced structural changes with fusogenic/inhibitory activity is proposed.

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