Biochemical and biological studies of mouse APOBEC3

Smita Nair1, Silvia Sanchez-Martinez, Xinhua Ji

  • 1HIV Drug Resistance Program, Center for Cancer Research, National Cancer Institute, Frederick, Maryland, USA.

Journal of Virology
|January 24, 2014
PubMed
Abstract

Insights

Mouse APOBEC3 (mA3) restricts retroviruses without G-to-A mutation, unlike human APOBEC3G. Researchers characterized mA3, finding its deaminase activity in the N-terminal domain and packaging requirements in the C-terminal domain, but the mechanism of MLV resistance remains unclear.

Area of Science:

  • Virology
  • Molecular Biology
  • Biochemistry

Background:

  • Mammalian cells employ APOBEC3 (apolipoprotein B mRNA editing enzyme, catalytic polypeptide-like 3) proteins as a defense against retroviral infections.
  • Mouse APOBEC3 (mA3) restricts murine leukemia viruses (MLVs) but does not induce G-to-A mutations, a mechanism distinct from human APOBEC3G (hA3G) and its activity against Vif-deficient HIV-1 (ΔVif HIV-1).

Purpose of the Study:

  • To characterize recombinant mouse APOBEC3 (mA3) protein and elucidate the mechanism of its incorporation into retrovirus particles.
  • To investigate the enzymatic activity and antiviral properties of mA3 in relation to MLVs and ΔVif HIV-1.

Main Methods:

  • Production of a glutathione S-transferase-mA3 fusion protein in insect cells.
  • Enzymatic assays to determine cytidine deaminase activity and DNA substrate preference.
  • Site-directed mutagenesis to identify key residues for mA3 packaging and activity.
  • Analysis of mA3 incorporation into MLV and ΔVif HIV-1 particles.

Main Results:

  • mA3 possesses cytidine deaminase activity localized to its N-terminal domain; the C-terminal domain is essential for packaging into retroviral particles.
  • Specific residues in the C-terminal domain, including cysteines and aromatic residues, are crucial for mA3 packaging.
  • Mutations in phosphorylation sites significantly impair mA3's antiviral activity by affecting either deaminase function or encapsidation.
  • mA3 deaminates single-stranded DNA preferentially toward the 3' end, while hA3G shows opposite polarity; however, both preferentially deaminate the 5' end of minus-strand viral DNA within ΔVif HIV-1 virions.
  • Enzymatically active mA3 is recovered from MLV particles, yet it fails to induce detectable G-to-A mutations in infected cells, indicating an unknown resistance mechanism.

Conclusions:

  • The N-terminal domain of mA3 harbors deaminase activity, while the C-terminal domain mediates packaging into retroviral virions.
  • mA3's antiviral mechanism against MLVs, despite its enzymatic activity and presence in virions, remains elusive.
  • Understanding mA3's interaction with MLVs could reveal novel host-virus evasion strategies.

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