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.

Plos One
|August 1, 2015
PubMed

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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