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Updated: Aug 13, 2026

Detection of Protein Ubiquitination
Published on: August 19, 2009
Critical contribution of the MDM2 acidic domain to p53 ubiquitination
Hidehiko Kawai1, Dmitri Wiederschain, Zhi-Min Yuan
1Department of Cancer Cell Biology, Harvard School of Public Health, Boston, Massachusetts 02115, USA.
Abstract:
MDM2 is an E3 ubiquitin ligase that targets p53 for proteasomal degradation. Recent studies have shown, however, that the ring-finger domain (RFD) of MDM2, where the ubiquitin E3 ligase activity resides, is necessary but not sufficient for p53 ubiquitination, suggesting that an additional activity of MDM2 might be required. To test this possibility, we generated a series of MDM2/MDMX chimeric proteins to assess the contribution of each domain of MDM2 to the ubiquitination process. MDMX is a close structural homolog of MDM2 that nevertheless lacks the E3 ligase activity in vivo. We demonstrate here that MDMX gains self-ubiquitination activity and becomes extremely unstable upon introduction of the MDM2 RFD, indicating that the RFD is essential for self-ubiquitination. This MDMX chimeric protein, however, is unable to ubiquitinate p53 in vivo despite its E3 ligase activity and binding to p53, separating the self-ubiquitination activity of MDM2 from its ability to ubiquitinate p53. Significantly, fusion of the central acidic domain (AD) of MDM2 to the MDMX chimeric protein renders the protein fully capable of ubiquitinating p53, and p53 ubiquitination is associated with p53 degradation and nuclear export. Moreover, the AD mini protein expressed in trans can functionally rescue the AD-lacking MDM2 mutant, further supporting a critical role for the AD in MDM2-mediated p53 ubiquitination.
Insights
The MDM2 ring-finger domain (RFD) enables self-ubiquitination, but the acidic domain (AD) is crucial for MDM2 to ubiquitinate and degrade p53. This finding separates MDM2
Area of Science:
- Molecular Biology
- Cancer Biology
- Protein Degradation
Background:
- MDM2 is an E3 ubiquitin ligase targeting the tumor suppressor p53 for degradation.
- The MDM2 ring-finger domain (RFD) is essential but not sufficient for p53 ubiquitination, suggesting additional MDM2 functions.
Purpose of the Study:
- To investigate the distinct roles of MDM2 domains in p53 ubiquitination.
- To delineate the mechanisms underlying MDM2-mediated p53 degradation.
Main Methods:
- Construction and analysis of MDM2/MDMX chimeric proteins.
- Assessment of ubiquitination activity in vivo.
- Functional rescue experiments using mini proteins.
Main Results:
- The MDM2 RFD confers self-ubiquitination activity to MDMX.
- MDMX with MDM2 RFD cannot ubiquitinate p53, separating self-ubiquitination from p53 ubiquitination.
- The MDM2 acidic domain (AD) is essential for p53 ubiquitination, degradation, and nuclear export.
Conclusions:
- MDM2's RFD is responsible for self-ubiquitination, while the AD is critical for p53 ubiquitination and degradation.
- The findings highlight distinct domain functions within MDM2 for regulating p53.
- The AD plays a crucial role in MDM2-mediated p53 pathway regulation.
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