EWS-FLI1 suppresses NOTCH-activated p53 in Ewing's sarcoma

Jozef Ban1, Idriss M Bennani-Baiti, Max Kauer

  • 1Children's Cancer Research Institute, St. Anna Kinderkrebsforschung, Vienna, Austria.

Cancer Research
|September 2, 2008
PubMed

Insights

Ewing

Area of Science:

  • Oncology
  • Molecular Biology
  • Cell Signaling

Background:

  • Half of human tumors retain wild-type p53, but normal p53 function can be compromised by other cancer alterations.
  • Ewing's sarcoma family tumors (ESFT) commonly express wild-type p53 and are driven by EWS-FLI1 oncogene fusions.

Purpose of the Study:

  • To investigate how EWS-FLI1 affects wild-type p53 function in ESFT.
  • To elucidate the molecular pathways linking EWS-FLI1 to p53 regulation in ESFT.

Main Methods:

  • Silencing of EWS-FLI1 in ESFT cell lines.
  • Candidate gene approach to identify mediators of p53 induction.
  • Analysis of NOTCH signaling pathway components (NOTCH2, NOTCH3, JAG1).
  • Manipulation of NOTCH signaling using siRNA, GSI, NUMB1, and gene overexpression.

Main Results:

  • EWS-FLI1 silencing in wild-type p53 ESFT cells induced p53 and p21(WAF1/CIP1), causing cell cycle arrest.
  • HEY1 was identified as a key mediator, induced by EWS-FLI1 knockdown.
  • EWS-FLI1 suppression reactivated NOTCH signaling, involving NOTCH3 and JAG1, leading to HEY1 induction.
  • Intervention in the NOTCH-HEY1 axis modulated p53 and p21(WAF1/CIP1) levels.

Conclusions:

  • EWS-FLI1 oncogene fusion suppresses NOTCH signaling, thereby inhibiting p53 activity in ESFT.
  • Reactivation of NOTCH signaling upon EWS-FLI1 suppression leads to p53-dependent cell cycle arrest.
  • This study links EWS-FLI1, NOTCH, and p53 pathways, offering insights into tumor suppressor roles of NOTCH and oncogenesis in wild-type p53 cancers.

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