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Updated: Mar 7, 2026

A Facile Protocol to Generate Site-Specifically Acetylated Proteins in Escherichia Coli
Published on: December 9, 2017
Acetylation-dependent regulation of MDM2 E3 ligase activity dictates its oncogenic function
Naoe T Nihira1, Kohei Ogura1,2, Kouhei Shimizu1,3
1Department of Pathology, Beth Israel Deaconess Medical Center, Harvard Medical School, Boston, MA 02115, USA.
Abstract:
Abnormal activation of the oncogenic E3 ubiquitin ligase murine double minute 2 (MDM2) is frequently observed in human cancers. By ubiquitinating the tumor suppressor p53 protein, which leads to its proteasome-mediated destruction, MDM2 limits the tumor-suppressing activity of p53. On the other hand, by ubiquitinating itself, MDM2 targets itself for destruction and promotes the p53 tumor suppressor pathway, a process that can be antagonized by the deubiquitinase herpesvirus-associated ubiquitin-specific protease (HAUSP). We investigated the regulation of MDM2 substrate specificity and found that acetyltransferase p300-mediated acetylation and stabilization of MDM2 are molecular switches that block self-ubiquitination, thereby shifting its E3 ligase activity toward p53. In vitro and in cancer cell lines, p300-mediated acetylation of MDM2 on Lys182 and Lys185 enabled HAUSP to bind, presumably deubiquitinate, and stabilize MDM2. This acetylation within the nuclear localization signal domain decreased its interaction with the acidic domain, subsequently increased the interaction between the acidic domain and RING domain in MDM2, enabled the binding of HAUSP to the acidic domain in MDM2, and shifted MDM2 activity from autoubiquitination to p53 ubiquitination. However, upon genotoxic stress through exposure to etoposide, the deacetylase sirtuin 1 (SIRT1) deacetylated MDM2 at Lys182 and Lys185, thereby promoting self-ubiquitination and less ubiquitination and subsequent degradation of p53, thus increasing p53-dependent apoptosis. Therefore, this study indicates that dynamic acetylation is a molecular switch in the regulation of MDM2 substrate specificity, revealing further insight into the posttranslational regulation of the MDM2/p53 cell survival axis.
Insights
Acetylation by p300 stabilizes MDM2, promoting p53 ubiquitination and cancer growth. Deacetylation by SIRT1 under stress promotes MDM2 self-destruction, enhancing p53
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Murine double minute 2 (MDM2) is an oncogenic E3 ubiquitin ligase frequently activated in cancers.
- MDM2 targets the tumor suppressor p53 for degradation, limiting its anti-cancer activity.
- MDM2 can also ubiquitinate itself, promoting p53 pathway activation, a process regulated by herpesvirus-associated ubiquitin-specific protease (HAUSP).
Purpose of the Study:
- To investigate how MDM2 substrate specificity is regulated.
- To elucidate the role of acetylation and deacetylation in controlling MDM2 activity.
- To understand the interplay between p300, HAUSP, SIRT1, and MDM2 in cancer cell survival.
Main Methods:
- In vitro ubiquitination assays.
- Experiments using cancer cell lines.
- Analysis of protein-protein interactions and post-translational modifications (acetylation, ubiquitination).
- Treatment with etoposide to induce genotoxic stress.
Main Results:
- p300-mediated acetylation of MDM2 at Lys182/Lys185 stabilizes MDM2 by enabling HAUSP binding and blocking self-ubiquitination.
- Acetylation shifts MDM2's activity towards p53 ubiquitination.
- SIRT1-mediated deacetylation of MDM2 under genotoxic stress promotes MDM2 self-ubiquitination and degradation.
- Deacetylation leads to reduced p53 ubiquitination and degradation, enhancing p53-dependent apoptosis.
Conclusions:
- Dynamic acetylation of MDM2 acts as a molecular switch, regulating its substrate specificity.
- Post-translational modifications, specifically acetylation/deacetylation, are critical in controlling the MDM2/p53 axis.
- Targeting these regulatory mechanisms could offer new therapeutic strategies for cancer.
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