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Updated: May 9, 2026

High Throughput In Vitro Assessment of Latency Reversing Agents on HIV Transcription and Splicing
Published on: January 22, 2019
Impact of the Ku complex on HIV-1 expression and latency
Gwenola Manic1, Aurélie Maurin-Marlin, Fanny Laurent
1Laboratoire de Biologie et Pharmacologie Appliquée, Centre national de la recherche scientifique-UMR8113, Ecole Normale Supérieure de Cachan, Cachan, France.
Insights
The Ku complex influences human immunodeficiency virus type 1 (HIV-1) replication by affecting early transcription and viral latency. Depleting Ku reduces HIV-1 expression but enhances provirus reactivation, suggesting a role in managing viral activity.
Area of Science:
- Molecular Biology
- Virology
- Cellular Biology
Background:
- Ku is a DNA repair complex crucial for cell survival.
- Ku's role in retroviral replication, particularly HIV-1, is debated.
- Previous studies suggest Ku as a potential anti-HIV-1 target.
Purpose of the Study:
- To investigate the specific role of the Ku complex in the HIV-1 replication cycle.
- To elucidate the mechanism by which Ku affects HIV-1 gene expression and latency.
Main Methods:
- Utilized lentiviral vectors expressing GFP in HCT 116 cells with depleted Ku levels (stable/transient).
- Analyzed (pre-)integrative steps and early HIV-1 expression.
- Investigated the effect of p53 depletion and Ku binding to HIV-1 LTR.
- Assessed viral latency using trichostatin A and TNF-α treatments.
Main Results:
- Ku depletion did not impact HIV-1 pre-integration but decreased early transcription.
- The effect of Ku on HIV-1 expression is promoter-specific, requires integration, and is p53-dependent.
- Ku directly binds to the HIV-1 LTR and promotes early transcription.
- Ku limits viral latency; its absence enhances provirus reactivation.
Conclusions:
- Ku plays a significant role in early HIV-1 transcription and latency.
- Ku promotes early HIV-1 expression and restricts provirus latency.
- Ku influences HIV-1 expression and latency dynamics post-integration.
Abstract:
Ku, a cellular complex required for human cell survival and involved in double strand break DNA repair and multiple other cellular processes, may modulate retroviral multiplication, although the precise mechanism through which it acts is still controversial. Recently, Ku was identified as a possible anti-human immunodeficiency virus type 1 (HIV-1) target in human cells, in two global approaches. Here we investigated the role of Ku on the HIV-1 replication cycle by analyzing the expression level of a panel of non-replicative lentiviral vectors expressing the green fluorescent protein in human colorectal carcinoma HCT 116 cells, stably or transiently depleted of Ku. We found that in this cellular model the depletion of Ku did not affect the efficiency of (pre-)integrative steps but decreased the early HIV-1 expression by acting at the transcriptional level. This negative effect was specific of the HIV-1 promoter, required the obligatory step of viral DNA integration and was reversed by transient depletion of p53. We also provided evidence on a direct binding of Ku to HIV-1 LTR in transduced cells. Ku not only promotes the early transcription from the HIV-1 promoter, but also limits the constitution of viral latency. Moreover, in the presence of a normal level of Ku, HIV-1 expression was gradually lost over time, likely due to the counter-selection of HIV-1-expressing cells. On the contrary, the reactivation of transgene expression from HIV-1 by means of trichostatin A- or tumor necrosis factor α-administration was enhanced under condition of Ku haplodepletion, suggesting a phenomenon of provirus latency. These observations plead in favor of the hypothesis that Ku has an impact on HIV-1 expression and latency at early- and mid-time after integration.
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