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Downregulation of p68 RNA Helicase (DDX5) Activates a Survival Pathway Involving mTOR and MDM2 Signals
1Institute of Biomedical Research of Barcelona - Spanish National Research Council (CSIC), Barcelona, Spain.
Abstract:
The DEAD box p68 RNA helicase (DDX5) is required to manipulate RNA structures implicated in mRNA/rRNA processing and transcript export, and acts as a co-activator for a range of transcription factors. Previous research has indicated that p68 RNA helicase may also be important in tumour development. Wild-type HeLa and stable HeLa (clone 13) cell cultures containing RNAi-mediated depletion of p68 RNA helicase induced by doxycycline (DOX) were used to study how the p68 RNA helicase affects the mTOR cell signalling pathway. Relevant results were repeated using transient transfection with pSuper/pSuper-p68 RNA helicase, containing RNAi-mediated depletion of p68 RNA helicase, to avoid DOX interference. Here we provide strong evidence for the participation of p68 RNA helicase in mTOR regulation. In detail, depletion of this helicase decreases cell growth and activates the mTOR/MDM2 cell survival mechanism, which ultimately leads to inhibition of the pro-apoptotic activity. p68 RNA helicase downregulation strongly stimulates 4E-BP1 phosphorylation, thereby provoking activation of cap-dependent translation. In contrast, the IRES-dependent translation of c-myc is reduced when p68 RNA helicase is depleted, thus indicating that at least this specific translation requires p68 RNA helicase activity to manipulate the complex 5' end of this mRNA. Interestingly, p68 RNA helicase depletion decreases cell growth while activating the mTOR/MDM2 cell survival mechanism. As MDM2 is a known negative regulator of p53, we infer that the activation of the cell survival mechanism may result in inhibition of the pro-apoptotic factor p53. Finally, p68 RNA helicase depletion activates capdependent translation and inhibits c-MYC IRES-mediated translation.
Insights
The p68 RNA helicase (DDX5) regulates cell growth and translation. Depleting p68 helicase inhibits cell growth and c-MYC translation while activating survival pathways like mTOR/MDM2.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- The p68 RNA helicase (DDX5) is crucial for RNA processing, transcript export, and transcription factor co-activation.
- Previous studies suggest a role for p68 RNA helicase in tumor development.
- The mTOR signaling pathway is a key regulator of cell growth, proliferation, and survival.
Purpose of the Study:
- To investigate the role of p68 RNA helicase in regulating the mTOR cell signaling pathway.
- To elucidate the impact of p68 RNA helicase depletion on cell growth and survival mechanisms.
- To determine the effect of p68 RNA helicase on cap-dependent and IRES-dependent translation.
Main Methods:
- Utilized RNA interference (RNAi) to deplete p68 RNA helicase in HeLa cells.
- Employed doxycycline (DOX)-induced and transient transfection methods for RNAi.
- Analyzed the mTOR signaling pathway, cell growth, apoptosis, and translation initiation factors (4E-BP1, c-myc).
Main Results:
- Depletion of p68 RNA helicase decreased cell growth and activated the mTOR/MDM2 survival pathway.
- p68 RNA helicase downregulation led to inhibition of pro-apoptotic activity and p53.
- Stimulated 4E-BP1 phosphorylation, activating cap-dependent translation, while inhibiting c-MYC IRES-dependent translation.
Conclusions:
- p68 RNA helicase plays a significant role in mTOR pathway regulation.
- p68 RNA helicase influences cell survival by modulating the mTOR/MDM2 pathway and p53.
- p68 RNA helicase differentially affects cap-dependent and IRES-dependent translation initiation.
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