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Functional analysis of the two cytidine deaminase domains in APOBEC3G
Xiaoyu Li1, Jing Ma, Quan Zhang
1Institute of Medicinal Biotechnology, Beijing, China.
Insights
Human APOBEC3G (hA3G) cytidine deaminase domains are key for anti-HIV-1 activity. Domain swapping affects Vif degradation, editing, and antiviral function, highlighting coordinated domain roles.
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- Human APOBEC3G (hA3G) is a host factor inhibiting HIV-1.
- hA3G possesses two cytidine deaminase domains (CDs), but their specific roles remain debated.
Purpose of the Study:
- To investigate the functional roles of hA3G's cytidine deaminase domains.
- To determine how domain replacement or switching impacts hA3G's biological functions.
Main Methods:
- Construction of hA3G mutants: CD1-1 (duplicate CD1), CD2-2 (duplicate CD2), and CD2-1 (switched domains).
- Analysis of mutant hA3G in virion encapsidation, Vif-mediated degradation, deamination activity, and antiviral function against HIV-1.
Main Results:
- Both CD domains are functionally equivalent in virion encapsidation and Vif interaction.
- Domain switching/replacement significantly altered sensitivity to Vif degradation, editing efficiency, and antiviral activity.
- While CD2 showed deamination activity, CD2-2 failed to mutate viral cDNA, indicating CD1's involvement in enzymatic function.
- CD2-1 retained deamination activity but with altered sequence preference.
Conclusions:
- hA3G cytidine deaminase domains play structural roles in virion encapsidation and Vif degradation.
- Coordination between the two CD domains is essential for hA3G's editing and antiviral efficacy against HIV-1.
Abstract:
Human APOBEC3G (hA3G), a cytidine deaminase with two cytidine deaminase domains (CDs), has been identified as an anti-HIV-1 host factor. Although the two CDs of hA3G have been extensively characterized, there is still debate on the role of the CDs in the biological function of hA3G. In this work, we constructed three hA3G mutants CD1-1, CD2-2 and CD2-1, which contain duplicate CD1 domain, duplicate CD2 domain and position switched CD domain respectively, and investigated the effect of CD domain replacement or switch upon virion encapsidation, Vif-mediated degradation, deamination and antiviral activity of hA3G. The results showed that the two CD domains were functionally equivalent in virion encapsidation and the interaction with HIV-1 Vif of hA3G, whereas CD domain switch or replacement greatly affected the sensitivity to Vif induced degradation, editing and antiviral activity of hA3G. Although the CD2 domain was shown to possess the deamination activity, CD2-2 incorporated efficiently into HIV-1 was unable to mutate viral cDNA, suggesting that CD1 also involved in the enzymatic function. Interestingly, CD2-1 retained considerable deamination activity with a different sequence preference. Taken together, our results suggest that CD domain may play a structural role in virion encapsidation and Vif-mediated degradation of hA3G, and coordination of the two CD domains is required for its editing and antiviral activity.
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