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Requirement for HDM2 activity in the rapid degradation of p53 in neuroblastoma
J S Isaacs1, S Saito, L M Neckers
1Tumor Cell Biology Section, Medicine Branch, NCI, National Institutes of Health, Rockville, Maryland 20850, USA.
Abstract:
The wild type p53 tumor suppressor protein is rapidly degraded in normal cells by MDM2, the ubiquitin ligase that serves as the key regulator of p53 function by modulating protein stability. Cellular exposure to genotoxic stress triggers the stabilization of p53 by multiple pathways that converge upon interference with MDM2 function. In this study, we first investigated the ability of HDM2 (MDM2 human homologue) to degrade endogenous p53 in neuroblastoma (NB). Although the p53 protein in NB has been reported to be constitutively stabilized, we find that HDM2 in NB is functional and facilitates the rapid turnover of p53 in nonstressed cells via the proteasome pathway. Second, we examined the relationship between p53 and HDM2 in the adriamycin-mediated stabilization of p53 in NB. We demonstrate that while p53 stabilization depends neither upon the phosphorylation of specific N-terminal sites nor upon dissociation from HDM2, it requires inactivation of functional HDM2. In support of this notion, p53 stabilization following adriamycin resulted in an inhibition of both p53 ubiquitination and HDM2 ligase activity. Taken together, these data implicate a requirement for enzymatic inactivation of HDM2 as a novel mechanism for p53 stabilization in the DNA damage response pathway.
Insights
Wild type p53 protein is degraded by MDM2 in normal cells. DNA damage stabilizes p53 by inactivating HDM2, a key regulator, revealing a novel DNA damage response mechanism.
Area of Science:
- Molecular Biology
- Cancer Research
- Cellular Biology
Background:
- The p53 tumor suppressor protein's stability is tightly regulated by MDM2, a ubiquitin ligase.
- Genotoxic stress induces p53 stabilization through pathways that interfere with MDM2 function.
Purpose of the Study:
- Investigate HDM2's role in p53 degradation in neuroblastoma (NB).
- Examine the mechanism of adriamycin-induced p53 stabilization in NB cells.
Main Methods:
- Assessed endogenous p53 degradation by HDM2 in NB cells.
- Analyzed p53 and HDM2 interactions and activity following adriamycin treatment.
- Measured p53 ubiquitination and HDM2 ligase activity.
Main Results:
- HDM2 actively degrades p53 in non-stressed NB cells via the proteasome.
- Adriamycin-induced p53 stabilization in NB requires HDM2 inactivation, not p53 phosphorylation or dissociation.
- p53 stabilization correlated with inhibited p53 ubiquitination and HDM2 ligase activity.
Conclusions:
- HDM2 is functional in NB, regulating p53 turnover.
- Enzymatic inactivation of HDM2 is a novel mechanism for p53 stabilization during DNA damage response.
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