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Assembly with the Cul4A-DDB1DCAF1 ubiquitin ligase protects HIV-1 Vpr from proteasomal degradation
Erwann Le Rouzic1, Marina Morel, Diana Ayinde
1Institut Cochin, Université Paris Descartes, Centre National de la Recherche Scientifique, UMR 8104, bâtiment Gustave Roussy, 27 rue du faubourg Saint Jacques, Paris, France.
Abstract:
Many viruses subvert the host ubiquitin-proteasome system to optimize their life cycle. We recently documented such a mechanism for the human immunodeficiency virus type 1 Vpr protein, which promotes cell cycle arrest by recruiting the DCAF1 adaptor of the Cul4A-DDB1 ubiquitin ligase, a finding now confirmed by several groups. Here we examined the impact of Cul4A-DDB1(DCAF1) on Vpr stability. We show that the Vpr(Q65R) mutant, which is defective in DCAF1 binding, undergoes proteasome-mediated degradation at a higher rate than wild-type Vpr. DCAF1 overexpression stabilizes wild-type Vpr and leads to its cytoplasmic accumulation, whereas it has no effect on the Vpr(Q65R) mutant. Conversely, small interfering RNA-mediated silencing of DCAF1 decreases the steady state amount of the viral protein. Stabilization by DCAF1, which is conserved by Vpr species from human immunodeficiency virus type 2 and the SIVmac strain, results in increased G(2) arrest and requires the presence of DDB1, indicating that it occurs through assembly of Vpr with a functional Cul4A-DDB1(DCAF1) complex. Furthermore, in human immunodeficiency virus type 1-infected cells, the Vpr protein, issued from the incoming viral particle, is destabilized under DCAF1 or DDB1 silencing. Together with our previous findings, our data suggest that Cul4A-DDB1(DCAF1) acts at a dual level by providing Vpr with the equipment for the degradation of specific host proteins and by counter-acting its proteasome targeting by another cellular E3 ubiquitin ligase. This protection mechanism may represent an efficient way to optimize the activity of Vpr molecules that are delivered by the incoming virus before neosynthesis takes place. Targeting the Vpr-DCAF1 interaction might therefore present therapeutic interest.
Insights
The Cul4A-DDB1(DCAF1) complex stabilizes the human immunodeficiency virus type 1 Vpr protein, preventing its degradation. This interaction is crucial for Vpr
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Viruses manipulate host cell machinery for replication.
- The human immunodeficiency virus type 1 (HIV-1) Vpr protein hijacks the ubiquitin-proteasome system.
- Vpr recruits DCAF1, an adaptor for the Cul4A-DDB1 ubiquitin ligase, to induce cell cycle arrest.
Purpose of the Study:
- To investigate the effect of the Cul4A-DDB1(DCAF1) complex on Vpr protein stability.
- To understand the mechanism by which DCAF1 influences Vpr levels and function.
Main Methods:
- Site-directed mutagenesis to create Vpr mutants (e.g., Vpr(Q65R)) defective in DCAF1 binding.
- Overexpression of DCAF1 and DDB1.
- Small interfering RNA (siRNA) mediated silencing of DCAF1 and DDB1.
- Western blotting to assess protein levels.
- Analysis of viral protein stability in infected cells.
Main Results:
- Vpr(Q65R) mutant showed increased proteasomal degradation compared to wild-type Vpr.
- DCAF1 overexpression stabilized wild-type Vpr and promoted its cytoplasmic accumulation.
- DCAF1 or DDB1 silencing reduced steady-state levels of Vpr in infected cells.
- DCAF1-mediated stabilization of Vpr is conserved across different primate lentiviruses and requires DDB1.
- Vpr stabilization by DCAF1 correlated with increased G2 arrest.
Conclusions:
- Cul4A-DDB1(DCAF1) complex stabilizes HIV-1 Vpr, counteracting its proteasomal degradation.
- This stabilization mechanism enhances Vpr's ability to induce cell cycle arrest.
- The Vpr-DCAF1 interaction is a potential therapeutic target to inhibit viral replication.
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