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Published on: November 18, 2013
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.
Unlabelled:
Many murine leukemia viruses (MLVs) are partially resistant to restriction by mouse APOBEC3 (mA3) and essentially fully resistant to induction of G-to-A mutations by mA3. In contrast, Vif-deficient HIV-1 (ΔVif HIV-1) is profoundly restricted by mA3, and the restriction includes high levels of G-to-A mutation. Human APOBEC3G (hA3G), unlike mA3, is fully active against MLVs. We produced a glutathione S-transferase-mA3 fusion protein in insect cells and demonstrated that it possesses cytidine deaminase activity, as expected. This activity is localized within the N-terminal domain of this 2-domain protein; the C-terminal domain is enzymatically inactive but required for mA3 encapsidation into retrovirus particles. We found that a specific arginine residue and several aromatic residues, as well as the zinc-coordinating cysteines in the C-terminal domain, are necessary for mA3 packaging; a structural model of this domain suggests that these residues line a potential nucleic acid-binding interface. Mutation of a few potential phosphorylation sites in mA3 drastically reduces its antiviral activity by impairing either deaminase activity or its encapsidation. mA3 deaminates short single-stranded DNA oligonucleotides preferentially toward their 3' ends, whereas hA3G exhibits the opposite polarity. However, when packaged into infectious ΔVif HIV-1 virions, both mA3 and hA3G preferentially induce deaminations toward the 5' end of minus-strand viral DNA, presumably because of the sequence of events during reverse transcription in vivo. Despite the fact that mA3 in MLV particles does not induce detectable deaminations upon infection, its deaminase activity is easily detected in virus lysates. We still do not understand how MLV resists mA3-induced G-to-A mutation.
Importance:
One way that mammalian cells defend themselves against infection by retroviruses is with APOBEC3 proteins. These proteins convert cytidine bases to uridine bases in retroviral DNA. However, mouse APOBEC3 protein blocks infection by murine leukemia viruses without catalyzing this base change, and the mechanism of inhibition is not understood in this case. We have produced recombinant mouse APOBEC3 protein for the first time and characterized it here in a number of ways. Our mutational studies shed light on the mechanism by which mouse APOBEC3 protein is incorporated into retrovirus particles. While mouse APOBEC3 does not catalyze base changes in murine leukemia virus DNA, it can be recovered from these virus particles in enzymatically active form; it is still not clear why it fails to induce base changes when these viruses infect new cells.
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.

