The gammaretroviral p12 protein has multiple domains that function during the early stages of replication

Darren J Wight1, Virginie C Boucherit, Mirella Nader

  • 1Division of Virology, MRC National Institute for Medical Research, The Ridgeway, Mill Hill, London NW7 1AA, UK.

Retrovirology
|October 6, 2012
PubMed
Abstract

Insights

The Moloney murine leukaemia virus (Mo-MLV) p12 protein has distinct N- and C-terminal domains crucial for early retroviral infection. The N-terminus stabilizes the viral core, while the C-terminus aids integration into host DNA.

Area of Science:

  • Retroviral biology
  • Molecular virology
  • Structural protein function

Background:

  • The Moloney murine leukaemia virus (Mo-MLV) gag gene encodes structural proteins including p12.
  • p12 protein has an essential but undefined role in early post-entry retroviral infection stages.
  • Understanding p12 function is key to elucidating poorly understood retroviral infection mechanisms.

Purpose of the Study:

  • To investigate the function of the p12 protein during early retroviral post-entry events.
  • To determine the roles of the N- and C-terminal regions of p12 in viral infectivity.
  • To explore the conservation and specific requirements of p12 domains across gammaretroviruses.

Main Methods:

  • Analysis of Mo-MLV virus-like particles with wild-type and mutant p12 proteins.
  • Creation and analysis of p12 mutants in various gammaretroviruses.
  • Construction of chimeric p12 proteins between Mo-MLV and gibbon ape leukaemia virus.
  • Mutational analysis to identify essential residues within p12 domains.
  • Assessment of viral particle ability to abrogate restriction factors.
  • Introduction of a chromatin binding motif into p12 mutants.

Main Results:

  • p12's N- and C-terminal regions act sequentially, with N-terminal activity preceding C-terminal activity.
  • These domains are conserved across gammaretroviruses, though specific N-terminal regions vary in importance.
  • The C-terminal domain's essential region is conserved across all tested viruses, and domains are interchangeable in chimeras.
  • N-terminal defects impair viral core integrity and abrogation of restriction factors.
  • C-terminal domain defects can be compensated by introducing a chromatin binding motif.

Conclusions:

  • A model proposing p12 function: N-terminus stabilizes the viral core, C-terminus tethers the preintegration complex to host chromatin.
  • This interaction facilitates viral integration into host DNA during mitosis.
  • p12 plays a critical role in coordinating early post-entry events for successful retroviral replication.

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