Membrane deformations induced by the matrix protein of vesicular stomatitis virus in a minimal system

Jérôme Solon1, Olivier Gareil1, Patricia Bassereau1

  • 1Institut Curie, UMR CNRS 168, 26 Rue d'Ulm, F75248 Paris Cedex 5, France.

Insights

The matrix (M) protein of vesicular stomatitis virus deforms membranes, initiating virus budding. M protein alone can induce membrane curvature, but requires other factors for final fission.

Area of Science:

  • Virology
  • Cell Biology
  • Biophysics

Background:

  • The matrix (M) protein of vesicular stomatitis virus is crucial for viral assembly and budding.
  • M protein binds to negatively charged phospholipids and recruits cellular proteins for efficient virus release.

Purpose of the Study:

  • To investigate the ability of M protein to deform target membranes in vitro.
  • To understand the role of M protein in inducing membrane curvature during viral budding.

Main Methods:

  • Incubation of purified M protein with giant unilamellar vesicles.
  • Observation using phase-contrast and confocal microscopy.
  • Analysis of M protein colocalization with lipids and membrane deformations.

Main Results:

  • M protein forms patches on vesicles, inducing inward membrane deformations.
  • M protein colocalizes with negatively charged lipid domains, initiating deformation.
  • The N-terminal part and hydrophobic loop of M protein influence the process.
  • The final membrane fission step was not observed, suggesting requirement for other factors.

Conclusions:

  • M protein alone can impose the necessary budding curvature on membranes.
  • Negatively charged lipids are important for M protein-induced membrane deformation.
  • Additional viral or cellular factors are necessary for the complete budding and fission process.

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