Comparing multifunctional viral and eukaryotic proteins for generating scission necks in membranes

Insights

Protein machinery forms critical membrane scission necks. Influenza M2 viroporin shows pH-dependent activity, while mitochondrial fission proteins

Area of Science:

  • Membrane biology
  • Biophysics
  • Virology

Background:

  • Protein machinery plays a critical role in membrane scission, a process essential for viral maturation and cellular functions like mitochondrial fission.
  • The M2 viroporin from influenza A virus and eukaryotic dynamins (e.g., yeast Dnm1) exemplify proteins with multiplexed functions in membrane remodeling and scission.
  • Understanding how these proteins induce scission necks, especially across diverse conditions, is challenging due to nanoscale dimensions and thermal fluctuations.

Approach:

  • A mechanical model was developed to estimate scission neck sizes.
  • Small-Angle X-ray Scattering (SAXS) data of protein-lipid systems under varying conditions were utilized.
  • Molecular dynamic simulations complemented experimental data to investigate influencing factors.

Key Points:

  • The M2 protein from influenza A virus exhibits robust, pH-dependent membrane activity, inducing nanoscopic necks suitable for spontaneous hemi-fission across various lipid compositions.
  • Scission neck sizes induced by mitochondrial fission proteins are highly sensitive to lipid composition, suggesting a significant role for mechanical constriction.
  • Interfacial tension, lipid composition, and membrane budding morphology were systematically analyzed for their influence on scission neck size.

Conclusions:

  • The study provides insights into the distinct mechanisms by which viral and eukaryotic proteins induce membrane scission.
  • Findings highlight the tunable nature of M2 protein activity and the lipid-dependent mechanical role of mitochondrial fission proteins.
  • This research offers a framework for understanding protein-mediated membrane scission dynamics.

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