Downregulation of p68 RNA Helicase (DDX5) Activates a Survival Pathway Involving mTOR and MDM2 Signals

M Kokolo1, M Bach-Elias1

  • 1Institute of Biomedical Research of Barcelona - Spanish National Research Council (CSIC), Barcelona, Spain.

Folia Biologica
|May 31, 2017
PubMed

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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