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Updated: Jun 24, 2026

Determining 3'-Termini and Sequences of Nascent Single-Stranded Viral DNA Molecules during HIV-1 Reverse Transcription in Infected Cells
Published on: January 30, 2019
Restriction of HIV-1 by APOBEC3G is cytidine deaminase-dependent
Edward P Browne1, Carolina Allers, Nathaniel R Landau
1Department of Microbiology, New York University School of Medicine, New York, 10016, USA.
Insights
Cytidine deamination by APOBEC3G is the main way it stops HIV-1. Studies exploring deaminase-independent restriction found it lacks antiviral activity, confirming deamination
Area of Science:
- Virology
- Molecular Biology
- Immunology
Background:
- APOBEC3G is a key antiviral factor against HIV-1.
- Its restriction mechanism is primarily cytidine deamination.
- A deaminase-independent restriction mechanism has been proposed but not fully elucidated.
Purpose of the Study:
- To re-evaluate the biological relevance of deaminase-independent APOBEC3G restriction of HIV-1.
- To determine the mechanism by which APOBEC3G inhibits HIV-1 replication.
- To assess the potency of APOBEC3G antiviral activity.
Main Methods:
- Utilized active site APOBEC3G mutants (Glu-->Ala at AS1, AS2, or both).
- Expressed mutants in CEM-SS T cells and 293T cells.
- Assessed Deltavif HIV-1 replication in single-cycle and multi-cycle assays.
Main Results:
- AS2 and AS1/AS2 mutants, despite efficient virion packaging, lacked antiviral activity.
- AS1 mutant, retaining deaminase activity, showed near wild-type antiviral function.
- Even 1-2 molecules of APOBEC3G per virion significantly reduced infectivity, suggesting high potency.
Conclusions:
- Cytidine deamination is the primary mechanism of APOBEC3G-mediated HIV-1 restriction.
- Deaminase-independent mechanisms are not biologically relevant for APOBEC3G antiviral activity.
- The high potency of APOBEC3G supports a catalytic deamination mechanism.
Abstract:
Cytidine deamination is the primary mechanism by which APOBEC3G restricts HIV-1; however, several studies have reported that APOBEC3G also inhibits virus replication via a mechanism that is independent of deamination. Using active site APOBEC3G mutants, we have re-evaluated the biological relevance of deaminase-independent APOBEC3G-mediated restriction of HIV-1. APOBEC3G proteins with Glu-->Ala mutations in AS1, AS2 or AS1 and AS2 were stably expressed at physiological levels in CEM-SS T cells and 293T cells and the ability of the cells to support Deltavif HIV-1 replication was then tested. The AS2 and AS1/AS2 mutants were packaged efficiently into virions but in single-cycle or multi-cycle HIV-1 replication assays, were found to lack antiviral activity. The AS1 mutant, which retained deaminase activity, maintained near wild-type antiviral function. To determine the potency of APOBEC3G antiviral activity, cell lines were established that that expressed low levels of wild-type APOBEC3G and generated virions that contained as few as 1-2 APOBEC3G molecules. Even at very low copy number, APOBEC3G caused a significant reduction in infectivity, suggesting that a single molecule of packaged APOBEC3G inactivates the virus. The high potency of APOBEC3G is consistent with a catalytic mechanism of restriction in which a single molecule can induce a string of mutations but difficult to reconcile with a deaminase-independent, non-catalytic mechanism. Analysis of the reverse transcript sequences showed that the G-->A mutations were clustered, likely reflecting the action of single APOBEC3G molecules acting processively. We conclude that cytidine deamination is the mechanism by which APOBEC3G restricts HIV-1.
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