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Published on: August 14, 2018
HIV-1 Vif interaction with APOBEC3 deaminases and its characterization by a new sensitive assay
Iris Cadima-Couto1, Nuno Saraiva, Ana Catarina C Santos
1URIA-IMM, Faculdade de Farmácia da Universidade Lisboa, Av. Das Forças Armadas, 1649-059 Lisbon, Portugal.
Insights
A novel Protein Fragment Complementation Assay (PCA) effectively measures interactions between HIV-1 Vif and APOBEC3 proteins. This sensitive method can guide therapeutic strategies by assessing Vif-APOBEC3 interactions for antiviral activity.
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- Human APOBEC3 (A3) proteins inhibit HIV-1 replication.
- HIV-1 Vif protein targets A3 proteins for degradation, counteracting their antiviral effect.
- Blocking Vif-A3 interactions could enhance natural antiviral responses.
Purpose of the Study:
- To develop and validate a Protein Fragment Complementation Assay (PCA) for studying HIV-1 Vif and APOBEC3 (A3) interactions.
- To assess the sensitivity and reliability of PCA compared to existing methods like co-immunoprecipitation.
Main Methods:
- Utilized a TEM-1 β-lactamase-based PCA to detect Vif-A3 binding.
- Fused Vif and A3 proteins (A3G, A3F, A3C) to complementary β-lactamase fragments.
- Validated the assay using known Vif and A3G mutations and tested interactions with other A3 family members.
Main Results:
- Successfully applied PCA to study Vif-A3 interactions, demonstrating its applicability.
- PCA proved to be a sensitive and reliable technique for quantitative assessment of these interactions.
- PCA showed higher sensitivity than co-immunoprecipitation for Vif-A3 interaction analysis.
Conclusions:
- PCA is a valuable tool for quantitatively assessing Vif-APOBEC3 interactions.
- The assay can be used to identify specific domains involved in Vif-APOBEC interactions.
- This technique holds potential for developing therapeutic strategies targeting HIV-1 Vif-A3 interactions.
Abstract:
The human APOBEC3 (A3) cytidine deaminases, such as APOBEC3G (A3G) and APOBEC3F (A3F), are potent inhibitors of Vif-deficient human immunodeficiency virus type 1 (HIV-1). HIV-1 Vif (viral infectivity factor) binds A3 proteins and targets these proteins for ubiquitination and proteasomal degradation. As such, the therapeutic blockage of Vif-A3 interaction is predicted to stimulate natural antiviral activity by rescuing APOBEC expression and virion packaging. In this study, we describe a successful application of the Protein Fragment Complementation Assay (PCA) based on the enzyme TEM-1 β-lactamase to study Vif-A3 interactions. PCA is based on the interaction between two protein binding partners (e.g., Vif and A3G), which are fused to the two halves of a dissected marker protein (β-lactamase). Binding of the two partners reassembles β-lactamase and hence reconstitutes its activity. To validate our assay, we studied the effect of well-described Vif (DRMR, YRHHY) and A3G (D128K) mutations on the interaction between the two proteins. Additionally, we studied the interaction of human Vif with other members of the A3 family: A3F and APOBEC3C (A3C). Our results demonstrate the applicability of PCA as a simple and reliable technique for the assessment of Vif-A3 interactions. Furthermore, when compared with co-immunoprecipitation assays, PCA appeared to be a more sensitive technique for the quantitative assessment of Vif-A3 interactions. Thus, with our results, we conclude that PCA could be used to quantitatively study specific domains that may be involved in the interaction between Vif and APOBEC proteins.
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