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Published on: June 26, 2020
A p53-independent role for the MDM2 antagonist Nutlin-3 in DNA damage response initiation
Jane M Valentine1, Sonia Kumar, Abdeladim Moumen
1DNA Damage Response Group, Basic Medical Science Department, St George's University of London, Cranmer Terrace, London, UK.
Background:
The mammalian DNA-damage response (DDR) has evolved to protect genome stability and maximize cell survival following DNA-damage. One of the key regulators of the DDR is p53, itself tightly regulated by MDM2. Following double-strand DNA breaks (DSBs), mediators including ATM are recruited to the site of DNA-damage. Subsequent phosphorylation of p53 by ATM and ATM-induced CHK2 results in p53 stabilization, ultimately intensifying transcription of p53-responsive genes involved in DNA repair, cell-cycle checkpoint control and apoptosis.
Methods:
In the current study, we investigated the stabilization and activation of p53 and associated DDR proteins in response to treatment of human colorectal cancer cells (HCT116p53+/+) with the MDM2 antagonist, Nutlin-3.
Results:
Using immunoblotting, Nutlin-3 was observed to stabilize p53, and activate p53 target proteins. Unexpectedly, Nutlin-3 also mediated phosphorylation of p53 at key DNA-damage-specific serine residues (Ser15, 20 and 37). Furthermore, Nutlin-3 induced activation of CHK2 and ATM - proteins required for DNA-damage-dependent phosphorylation and activation of p53, and the phosphorylation of BRCA1 and H2AX - proteins known to be activated specifically in response to DNA damage. Indeed, using immunofluorescent labeling, Nutlin-3 was seen to induce formation of γH2AX foci, an early hallmark of the DDR. Moreover, Nutlin-3 induced phosphorylation of key DDR proteins, initiated cell cycle arrest and led to formation of γH2AX foci in cells lacking p53, whilst γH2AX foci were also noted in MDM2-deficient cells.
Conclusion:
To our knowledge, this is the first solid evidence showing a secondary role for Nutlin-3 as a DDR triggering agent, independent of p53 status, and unrelated to its role as an MDM2 antagonist.
Insights
Nutlin-3 stabilizes p53 and triggers the DNA-damage response (DDR) by activating ATM and CHK2. This occurs independently of p53 status, revealing a novel DDR-inducing role for Nutlin-3.
Area of Science:
- Molecular Biology
- Cellular Biology
- Cancer Research
Background:
- The DNA-damage response (DDR) is crucial for maintaining genome stability and cell survival.
- p53 is a key regulator of the DDR, tightly controlled by MDM2.
- ATM and CHK2 mediate p53 phosphorylation and activation following DNA damage.
Purpose of the Study:
- To investigate the effects of the MDM2 antagonist Nutlin-3 on p53 and DDR protein activation.
- To determine if Nutlin-3 induces DNA-damage-like responses.
Main Methods:
- Treatment of human colorectal cancer cells (HCT116p53+/+) with Nutlin-3.
- Immunoblotting to assess protein stabilization and phosphorylation.
- Immunofluorescent labeling to detect DNA-damage markers like γH2AX foci.
Main Results:
- Nutlin-3 stabilized p53 and activated p53 target proteins.
- Nutlin-3 induced phosphorylation of p53 at DNA-damage-specific sites (Ser15, 20, 37).
- Nutlin-3 activated ATM, CHK2, BRCA1, and H2AX, and induced γH2AX foci formation, indicative of DDR activation.
- These effects were observed even in cells lacking p53 or MDM2.
Conclusions:
- Nutlin-3 acts as a DNA-damage response (DDR) triggering agent.
- This DDR-inducing role is independent of p53 status and MDM2 antagonism.
- This study reveals a novel, secondary function for Nutlin-3 in cellular response to damage.
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