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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.
Abstract:
Although p53 is the most frequently mutated gene in cancer, half of human tumors retain wild-type p53, whereby it is unknown whether normal p53 function is compromised by other cancer-associated alterations. One example is Ewing's sarcoma family tumors (ESFT), where 90% express wild-type p53. ESFT are characterized by EWS-FLI1 oncogene fusions. Studying 6 ESFT cell lines, silencing of EWS-FLI1 in a wild-type p53 context resulted in increased p53 and p21(WAF1/CIP1) levels, causing cell cycle arrest. Using a candidate gene approach, HEY1 was linked to p53 induction. HEY1 was rarely expressed in 59 primary tumors, but consistently induced upon EWS-FLI1 knockdown in ESFT cell lines. The NOTCH signaling pathway targets HEY1, and we show NOTCH2 and NOTCH3 to be expressed in ESFT primary tumors and cell lines. Upon EWS-FLI1 silencing, NOTCH3 processing accompanied by nuclear translocation of the activated intracellular domain was observed in all but one p53-mutant cell line. In cell lines with the highest HEY1 induction, NOTCH3 activation was the consequence of JAG1 transcriptional induction. JAG1 modulation by specific siRNA, NOTCH-processing inhibition by either GSI or ectopic NUMB1, and siRNA-mediated HEY1 knockdown all inhibited p53 and p21(WAF1/CIP1) induction. Conversely, forced expression of JAG1, activated NOTCH3, or HEY1 induced p53 and p21(WAF1/CIP1). These results indicate that suppression of EWS-FLI1 reactivates NOTCH signaling in ESFT cells, resulting in p53-dependent cell cycle arrest. Our data link EWS-FLI1 to the NOTCH and p53 pathways and provide a plausible basis both for NOTCH tumor suppressor effects and oncogenesis of cancers that retain wild-type p53.
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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