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.
Abstract:
CpreTM is a fusogenic peptide whose N-terminal portion is derived from the membrane-proximal external region (MPER) and C-terminal portion covers the transmembrane (TM) domain of gp41 of HIV. CpreTM has been shown to induce membrane fusion, which requires cholesterol molecules as membrane components. To gain insight into the effects of CpreTM on membrane lipid dynamics, we performed molecular dynamics simulations. In conventional simulations, several cholesterol-binding sites were found under the segment derived from MPER and near the cholesterol recognition/interaction amino acid consensus (CRAC) motif located at the C-terminus of MPER. CpreTM resides in shallower positions in the POPC (palmitoyl oleoyl phosphatidylcholine)/cholesterol bilayer than in the pure POPC bilayer. Our metadynamic simulations using the position of one POPC molecule ("target POPC") as the collective variable showed that CpreTM remarkably lowered the free energy cost for the POPC protrusion from the cholesterol-containing membrane; e.g., the cost for 0.7 nm outward displacement from the height of bulk POPC molecules was decreased by ~10 kJ/mol compared to the peptide-free corresponding system. Such stabilization of the POPC protrusion was not observed in the cholesterol-free POPC membrane. It was more pronounced near the aromatic residues, including the three Trp residues of CpreTM, suggesting important roles for aromatic residues in stabilizing the POPC protrusion.
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.
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