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Membrane-Active Sequences within gp41 Membrane Proximal External Region (MPER) Modulate MPER-Containing Peptidyl
Si Min Zhang1, Alenka Jejcic2, James P Tam3
1Division of Clinical Microbiology, Department of Laboratory Medicine, Karolinska Institutet, Stockholm, SE-141 86, Sweden; School of Biological Sciences, Nanyang Technological University, 60 Nanyang Drive, Singapore, 637551, Singapore.
Abstract:
The membrane proximal external region (MPER) is a highly conserved membrane-active region located at the juxtamembrane positions within class I viral fusion glycoproteins and essential for membrane fusion events during viral entry. The MPER in the human immunodeficiency virus type I (HIV-1) envelope protein (Env) interacts with the lipid bilayers through a cluster of tryptophan (Trp) residues and a C-terminal cholesterol-interacting motif. The inclusion of the MPER N-terminal sequence contributes to the membrane reactivity and anti-viral efficacy of the first two anti-HIV peptidyl fusion inhibitors T20 and T1249. As a type I transmembrane protein, Env also interacts with the cellular membranes during its biosynthesis and trafficking. Here we investigated the roles of MPER membrane-active sequences during both viral entry and assembly, specifically, their roles in the design of peptidyl fusion inhibitors and the biosynthesis of viral structural proteins. We found that elimination of the membrane-active elements in MPER peptides, namely, penta Trp→alanine (Ala) substitutions and the disruption of the C-terminal cholesterol-interacting motif through deletion inhibited the anti-viral effect against the pseudotyped HIV-1. Furthermore, as compared to C-terminal dimerization, N-terminal dimerization of MPER peptides and N-terminal extension with five helix-forming residues enhanced their anti-viral efficacy substantially. The secondary structure study revealed that the penta-Trp→Ala substitutions also increased the helical content in the MPER sequence, which prompted us to study the biological relevance of such mutations in pre-fusion Env. We observed that Ala mutations of Trp664, Trp668 and Trp670 in MPER moderately lowered the intracellular and intraviral contents of Env while significantly elevating the content of another viral structural protein, p55/Gag and its derivative p24/capsid. The data suggest a role of the gp41 MPER in the membrane-reactive events during both viral entry and budding, and provide insights into the future development of anti-viral therapeutics.
Insights
The membrane proximal external region (MPER) in HIV-1 is crucial for viral entry and assembly. Modifying its membrane-active elements impacts anti-viral drug efficacy and viral protein production.
Area of Science:
- Virology
- Structural Biology
- Drug Discovery
Background:
- The membrane proximal external region (MPER) is vital for viral fusion glycoproteins, mediating membrane fusion during viral entry.
- In human immunodeficiency virus type I (HIV-1), the MPER interacts with lipid bilayers via tryptophan residues and a cholesterol-interacting motif.
- MPER sequences contribute to the efficacy of anti-HIV peptidyl fusion inhibitors like T20 and T1249.
Purpose of the Study:
- To investigate the roles of MPER membrane-active sequences in HIV-1 viral entry and assembly.
- To explore the potential of MPER modifications in designing effective peptidyl fusion inhibitors.
- To understand the impact of MPER mutations on viral structural protein biosynthesis.
Main Methods:
- Mutagenesis of MPER membrane-active elements (tryptophan substitutions and cholesterol-interacting motif deletion).
- Assessment of anti-viral efficacy of modified MPER peptides against pseudotyped HIV-1.
- Analysis of secondary structure changes in MPER peptides.
- Evaluation of the effects of MPER mutations on intracellular and intraviral Env, p55/Gag, and p24/capsid protein levels.
Main Results:
- Elimination of MPER membrane-active elements (Trp→Ala substitutions, C-terminal deletion) abolished anti-viral effects.
- N-terminal dimerization and extension of MPER peptides significantly enhanced anti-viral efficacy.
- Trp→Ala substitutions in MPER increased helical content.
- MPER mutations (Ala substitutions for Trp664, Trp668, Trp670) reduced Env levels but increased p55/Gag and p24/capsid levels.
Conclusions:
- The MPER's membrane-active sequences play critical roles in both HIV-1 entry and viral budding.
- MPER modifications offer potential for developing novel anti-viral therapeutics targeting fusion inhibition and viral assembly.
- Understanding MPER's dual role provides insights for future anti-HIV drug design.
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