Oligomerization and Cell Egress Controlled by Two Microdomains of Canine Distemper Virus Matrix Protein

Matthieu Gast1,2,3, Nicole P Kadzioch1,2,3, Doreen Milius4

  • 1Division of Experimental Clinical Research, DCR-VPH, Vetsuisse Faculty, University of Bern, Bern, Switzerland.

Msphere
|April 15, 2021
PubMed

Insights

Two microdomains in the canine distemper virus matrix protein are crucial for viral budding. Targeting these domains could lead to new antivirals against morbilliviruses.

Area of Science:

  • Virology
  • Molecular Biology
  • Structural Biology

Background:

  • Paramyxoviruses, including canine distemper virus (CDV), cause significant health issues.
  • The viral matrix (M) protein is essential for viral particle assembly and budding at the plasma membrane.
  • Targeting viral exit mechanisms offers a strategy to combat morbilliviral infections.

Purpose of the Study:

  • To investigate the role of two specific microdomains within the CDV M protein in viral budding.
  • To explore the potential of these microdomains as targets for antiviral drug development.

Main Methods:

  • Rational design of M protein mutants affecting two identified microdomains.
  • Analysis of protein folding, dimerization, and nucleocapsid interaction.
  • Assessment of plasma membrane localization, deformation, and virus-like particle formation.
  • Raster Image Correlation Spectroscopy (RICS) to study M protein mobility at the plasma membrane.

Main Results:

  • Mutants with altered microdomains retained proper folding, dimerization, and nucleocapsid interaction.
  • Despite normal plasma membrane interactions, these mutants showed significantly impaired virus-like particle and infectious virion production.
  • RICS demonstrated that both microdomains finely tune M protein mobility at the plasma membrane.
  • The identified microdomains are essential for efficient membrane budding activity.

Conclusions:

  • Two spatially distinct microdomains in the CDV M protein are critical for membrane budding.
  • These microdomains likely coordinate the assembly of higher-order M protein oligomers at the plasma membrane.
  • The findings highlight these microdomains as promising targets for developing novel antiviral therapies against morbilliviruses.

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