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Published on: June 9, 2017
Mechanism of p53 stabilization by ATM after DNA damage
1Molecular Oncology Department, Mofftt Cancer Center, Tampa, FL, USA.
Abstract:
p53 suppresses tumor development by responding to unauthorized cell proliferation, growth factor or nutrient deprivation, and DNA damage. Distinct pathways have been identified that cause p53 activation, including ARF-dependent response to oncogene activation, ribosomal protein-mediated response to abnormal rRNA synthesis, and ATM-dependent response to DNA damage. Elucidating the mechanisms of these signaling events are critical for understanding tumor suppression by p53 and development of novel cancer therapeutics. More than a decade of research has established the ATM kinase as a key molecule that activates p53 after DNA damage. Our recent study revealed that ATM phosphorylation of MDM2 is likely to be the key step in causing p53 stabilization. Upon activation by ionizing irradiation, ATM phosphorylates MDM2 on multiple sites near its RING domain. These modifications inhibit the ability of MDM2 to poly-ubiquitinate p53, thus leading to its stabilization. MDM2 phosphorylation does not inactivate its E3 ligase activity per se, since MDM2 self-ubiquitination and MDMX ubiquitination functions are retained. The selective inhibition of p53 poly-ubiquitination is accomplished through disrupting MDM2 oligomerization that may provide a scaffold for processive elongation of poly ubiquitin chains. These findings suggest a novel model of p53 activation and a general mechanism of E3 ligase regulation by phosphorylation.
Insights
The ATM kinase stabilizes tumor suppressor p53 by phosphorylating MDM2, a key step in DNA damage response. This phosphorylation selectively inhibits p53 ubiquitination, preventing uncontrolled cell growth.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Signaling
Background:
- p53 is a crucial tumor suppressor that responds to cellular stress, including DNA damage.
- ATM kinase is a known activator of p53 following DNA damage.
- MDM2 is an E3 ligase that targets p53 for degradation.
Purpose of the Study:
- To elucidate the precise mechanism by which ATM activates p53.
- To investigate the role of MDM2 phosphorylation in p53 stabilization.
- To understand the regulation of E3 ligase activity by phosphorylation.
Main Methods:
- Investigated the effect of ionizing irradiation on ATM and MDM2.
- Analyzed MDM2 phosphorylation sites near the RING domain.
- Assessed MDM2's ubiquitination activity towards p53, itself, and MDMX.
Main Results:
- ATM phosphorylates MDM2 on multiple sites upon ionizing irradiation.
- This phosphorylation selectively inhibits MDM2's ability to poly-ubiquitinate p53, leading to p53 stabilization.
- MDM2's E3 ligase activity towards itself and MDMX is retained, suggesting specific regulation of p53 ubiquitination via disruption of MDM2 oligomerization.
Conclusions:
- ATM-mediated phosphorylation of MDM2 is a critical step for p53 stabilization in response to DNA damage.
- This mechanism selectively inhibits p53 poly-ubiquitination by disrupting MDM2 oligomerization.
- Findings propose a novel model for p53 activation and a general mechanism for E3 ligase regulation.
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