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Published on: September 7, 2017
p14ARF silencing by promoter hypermethylation mediates abnormal intracellular localization of MDM2
M Esteller1, C Cordon-Cardo, P G Corn
1Department of Oncology, The Johns Hopkins Comprehensive Cancer Center, Baltimore, Maryland 21231, USA.
Abstract:
The INK4a/ARF locus encodes two distinct tumor suppressors, p16INK4a and p14ARF. Although the contribution of p16INK4a to human tumorigenesis through point mutation, deletion, and hypermethylation has been widely documented, little is known about specific p14ARF lesions and their consequences. Recent data indicate that p14ARF suffers inactivation by promoter hypermethylation in colorectal cancer cells. Because it is known that p14ARF prevents MDM2 nucleocytoplasmic shuttling and thus stabilizes p53 by attenuating MDM2-mediated degradation, we studied the relationship of p14ARF epigenetic silencing to the expression and localization of MDM2 and p53. Cancer cell lines with an unmethylated p14ARF promoter showed strong nuclear expression of MDM2, whereas in a colorectal cell line with p14ARF hypermethylation-associated inactivation, MDM2 protein was also seen in the cytosol. Treatment with the demethylating agent 5-aza-2'-deoxycytidine was able to reinternalize MDM2 to the nucleus, and p53 expression was restored. No apparent changes in retinoblastoma localization were observed. We also studied the profile of p14ARF promoter hypermethylation in an extensive collection of 559 human primary tumors of different cell types, observing that in colorectal, gastric, renal, esophageal, and endometrial neoplasms and gliomas, aberrant methylation of p14ARF was a relatively common epigenetic event. MDM2 expression patterns revealed that lack of p14ARF promoter hypermethylation was associated with tumors showing exclusive nuclear MDM2 staining, whereas MDM2 cytosolic staining was frequently observed in neoplasms with aberrant p14ARF methylation. Taken together, these data support that epigenetic silencing of p14ARF by promoter hypermethylation is a key mechanism in the disturbance of the MDM2 nuclear localization in human cancer.
Insights
Epigenetic silencing of the tumor suppressor p14ARF (Alternative Reading Frame) by promoter hypermethylation disrupts MDM2 nuclear localization. This epigenetic event is common in various human cancers, affecting p53 stability.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- The INK4a/ARF locus yields two tumor suppressors: p16INK4a and p14ARF.
- While p16INK4a's role in cancer is established, p14ARF lesions are less understood.
- p14ARF normally stabilizes p53 by inhibiting MDM2's degradation activity.
Purpose of the Study:
- Investigate the link between p14ARF epigenetic silencing and MDM2/p53 expression and localization.
- Determine the prevalence of p14ARF promoter hypermethylation in human tumors.
- Understand the impact of p14ARF inactivation on MDM2 localization in cancer.
Main Methods:
- Analyzed p14ARF promoter methylation status in cancer cell lines and 559 primary human tumors.
- Assessed the expression and subcellular localization of MDM2 and p53.
- Utilized the demethylating agent 5-aza-2'-deoxycytidine to reverse epigenetic silencing.
Main Results:
- p14ARF hypermethylation correlated with altered MDM2 localization (cytosolic vs. nuclear).
- Demethylation treatment restored MDM2 nuclear localization and p53 expression in cell lines.
- Aberrant p14ARF methylation was frequent in colorectal, gastric, renal, esophageal, endometrial, and glioma tumors.
Conclusions:
- Epigenetic silencing of p14ARF via promoter hypermethylation is a significant mechanism disrupting MDM2 nuclear localization in human cancers.
- This disruption impacts p53 regulation and tumor suppression.
- p14ARF epigenetic status serves as a potential biomarker and therapeutic target in various malignancies.
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