Lipid-Mediated Aggregation of Influenza Fusion Peptide

Amy Rice1, Paul S Blank2, Joshua Zimmerberg2

  • 1Laboratory of Computational Biology, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, Maryland 20892, United States.

Insights

Influenza fusion peptides (FP) form stable dimers, with lipid sorting influenced by membrane properties. Cholesterol promotes higher-order clustering, reducing the virus

Area of Science:

  • Biophysics
  • Structural Biology
  • Virology

Background:

  • The influenza A fusion peptide (FP) is crucial for viral entry, mediating direct interaction with target membranes.
  • FP aggregation and membrane poration are key steps in viral fusion.
  • Understanding FP-membrane interactions is vital for developing antiviral strategies.

Purpose of the Study:

  • To investigate the aggregation of influenza fusion peptides (FP) in various membrane compositions.
  • To examine lipid-mediated clustering and poration free energy using molecular dynamics simulations.
  • To elucidate the role of lipid spontaneous curvature and cholesterol in FP aggregation and function.

Main Methods:

  • Molecular dynamics simulations of FP aggregation in four distinct membrane compositions.
  • Analysis of peptide-peptide interactions and lipid sorting around FP dimers.
  • Calculation of poration free energy for different clustering configurations.

Main Results:

  • Stable antiparallel FP dimers form, primarily stabilized by peptide-peptide interactions, largely independent of membrane composition.
  • Lipid sorting under FP dimers is dictated by lipid spontaneous curvature; negative curvature lipids are enriched.
  • Cholesterol-containing membranes promote higher-order FP clustering (tetramers, linear arrangements), reducing poration efficiency.

Conclusions:

  • Lipids with varying curvature-generating propensities modulate FP aggregation and pore formation.
  • Cholesterol's role in modulating FP clustering and inhibiting poration has significant implications.
  • Findings may extend to other enveloped viruses, like SARS-CoV-2, exhibiting similar fusion peptide behavior.

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