Myristoylation drives dimerization of matrix protein from mouse mammary tumor virus

Michal Doležal1, Aleš Zábranský2, Jiří Dostál3

  • 1Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic, v.v.i., Flemingovo nám. 2, 166 10, Prague, Czech Republic. dolezal@uochb.cas.cz.

Retrovirology
|January 6, 2016
PubMed
Abstract

Insights

Myristoylation of mouse mammary tumor virus matrix (MA) protein stimulates its dimerization, burying myristoyl groups within the dimer interface. This mechanism differs from lentiviruses and facilitates intracellular assembly.

Area of Science:

  • Virology
  • Structural Biology
  • Biochemistry

Background:

  • Myristoylation of the matrix (MA) domain is essential for retroviral Gag polyprotein transport and plasma membrane binding in most retroviruses.
  • In betaretroviruses, myristoylation is crucial for particle transport to the plasma membrane, unlike in other retroviruses where it's vital for assembly.
  • Oligomerization of HIV-1 MA exposes the myristoyl group for membrane binding, but this effect is unstudied in other retroviruses.

Purpose of the Study:

  • To investigate the role of myristoylation and oligomerization in the assembly of betaretroviruses, specifically mouse mammary tumor virus (MMTV).
  • To determine the structural basis of MMTV MA dimerization and myristoyl group interaction.

Main Methods:

  • Solution dimerization assays
  • X-ray crystallography (1.57 Å resolution)
  • Molecular dynamics modeling
  • Site-directed mutagenesis

Main Results:

  • N-myristoylated MMTV MA forms dimers in solution, a process stimulated by myristoylation.
  • Crystal structure reveals myristoyl groups buried at the dimer interface, contributing to stable dimer formation through mutual swapping.
  • Mutations in the myristoyl binding site impair MA dimerization and extracellular particle release.

Conclusions:

  • MMTV MA dimerization is stimulated by myristoylation, with myristoyl groups sequestered within the dimer interface.
  • This sequestered conformation differs from lentiviruses and is proposed to facilitate intracellular assembly in betaretroviruses.
  • The findings provide a new model for MA-mediated retroviral assembly and transport.

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