A simulation analysis of the effect of a cholesterol-dependent fusogenic peptide from HIV gp41 on membrane

Manami Nishizawa1, Kazuhisa Nishizawa2

  • 1NIK Biomolecular Research Group, 7-50-15 Takinogawa, Kita, 114-0023 Tokyo, Japan.

Insights

The CpreTM peptide facilitates HIV gp41 membrane fusion by interacting with cholesterol. Molecular dynamics simulations reveal CpreTM stabilizes lipid protrusions in cholesterol-containing membranes, crucial for fusion.

Area of Science:

  • Biophysics
  • Molecular Biology
  • Membrane Biophysics

Background:

  • CpreTM, derived from HIV gp41, induces membrane fusion.
  • Cholesterol is essential for CpreTM-mediated membrane fusion.
  • Understanding CpreTM's impact on lipid dynamics is key to its fusogenic mechanism.

Purpose of the Study:

  • To investigate the effects of CpreTM on membrane lipid dynamics.
  • To elucidate the role of cholesterol in CpreTM-induced membrane fusion.
  • To identify specific interactions between CpreTM and membrane lipids.

Main Methods:

  • Molecular dynamics (MD) simulations.
  • Metadynamic simulations with a target palmitoyl oleoyl phosphatidylcholine (POPC) molecule.
  • Analysis of cholesterol-binding sites and free energy landscapes.

Main Results:

  • CpreTM binds cholesterol at sites near the MPER and CRAC motif.
  • CpreTM incorporates shallower in POPC/cholesterol bilayers compared to pure POPC.
  • CpreTM significantly reduces the free energy cost of POPC protrusion in cholesterol-rich membranes, an effect absent in cholesterol-free membranes.
  • Aromatic residues, particularly Trp, enhance POPC protrusion stabilization.

Conclusions:

  • CpreTM actively modulates membrane lipid organization to facilitate fusion.
  • Cholesterol plays a critical role in stabilizing CpreTM-induced lipid rearrangements.
  • Aromatic residues within CpreTM are vital for its interaction with and stabilization of the lipid bilayer.