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Updated: May 27, 2026

Conformational Evaluation of HIV-1 Trimeric Envelope Glycoproteins Using a Cell-based ELISA Assay
Published on: September 14, 2014
Membrane-proximal external HIV-1 gp41 motif adapted for destabilizing the highly rigid viral envelope
Beatriz Apellániz1, Andrey Ivankin, Shlomo Nir
1Biophysics Unit (CSIC-UPV/EHU) and Department of Biochemistry and Molecular Biology, University of the Basque Country, Bilbao, Spain.
Abstract:
Electron microscopy structural determinations suggest that the membrane-proximal external region (MPER) of glycoprotein 41 (gp41) may associate with the HIV-1 membrane interface. It is further proposed that MPER-induced disruption and/or deformation of the lipid bilayer ensue during viral fusion. However, it is predicted that the cholesterol content of this membrane (∼45 mol %) will act against MPER binding and restructuring activity, in agreement with alternative structural models proposing that the MPER constitutes a gp41 ectodomain component that does not insert into the viral membrane. Here, using MPER-based peptides, we test the hypothesis that cholesterol impedes the membrane association and destabilizing activities of this gp41 domain. To that end, partitioning and leakage assays carried out in lipid vesicles were combined with x-ray reflectivity and grazing-incidence diffraction studies of monolayers. CpreTM, a peptide combining the carboxyterminal MPER sequence with aminoterminal residues of the transmembrane domain, bound and destabilized effectively cholesterol-enriched membranes. Accordingly, virion incubation with this peptide inhibited cell infection potently but nonspecifically. Thus, CpreTM seems to mimic the envelope-perturbing function of the MPER domain and displays antiviral activity. As such, we infer that CpreTM bound to cholesterol-enriched membranes would represent a relevant target for anti-HIV-1 immunogen and inhibitor development.
Insights
Cholesterol hinders the membrane-disrupting activity of the HIV-1 glycoprotein 41 MPER domain. A novel peptide, CpreTM, effectively destabilized cholesterol-rich membranes, showing potential for antiviral development.
Area of Science:
- Biophysics
- Virology
- Structural Biology
Background:
- The membrane-proximal external region (MPER) of HIV-1 glycoprotein 41 (gp41) is implicated in viral fusion.
- High cholesterol content in viral membranes may impede MPER's interaction and destabilizing effects.
- Alternative models suggest MPER does not insert into the viral membrane.
Purpose of the Study:
- To investigate the hypothesis that cholesterol impedes MPER's membrane association and destabilizing activities.
- To evaluate the efficacy of MPER-based peptides in disrupting cholesterol-enriched membranes.
Main Methods:
- Lipid vesicle partitioning and leakage assays.
- X-ray reflectivity and grazing-incidence diffraction studies of lipid monolayers.
- Testing MPER-based peptides, including CpreTM, on cholesterol-enriched membranes.
Main Results:
- The peptide CpreTM, comprising MPER and transmembrane domain residues, effectively bound and destabilized cholesterol-enriched membranes.
- CpreTM inhibited HIV-1 cell infection, demonstrating potent but nonspecific antiviral activity.
- These findings suggest CpreTM mimics the envelope-perturbing function of the MPER domain.
Conclusions:
- Cholesterol impedes the membrane-destabilizing activity of the gp41 MPER domain.
- CpreTM exhibits antiviral properties by disrupting cholesterol-rich viral membranes.
- CpreTM-cholesterol-enriched membrane interactions present a potential target for anti-HIV-1 immunogen and inhibitor development.
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