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Updated: Sep 29, 2026

Purification of Ubiquitinated p53 Proteins from Mammalian Cells
Published on: March 21, 2022
Mdm-2 and ubiquitin-independent p53 proteasomal degradation regulated by NQO1
Gad Asher1, Joseph Lotem, Leo Sachs
1Department of Molecular Genetics, Weizmann Institute of Science, Rehovot 76100, Israel.
Abstract:
The tumor suppressor p53 is a labile protein whose level is known to be regulated by the Mdm-2-ubiquitin-proteasome degradation pathway. We have found another pathway for p53 proteasomal degradation regulated by NAD(P)H quinone oxidoreductase 1 (NQO1). Inhibition of NQO1 activity by dicoumarol induces p53 and p73 proteasomal degradation. A mutant p53 (p53([22,23])), which is resistant to Mdm-2-mediated degradation, was susceptible to dicoumarol-induced degradation. This finding indicates that the NQO1-regulated proteasomal p53 degradation is Mdm-2-independent. The tumor suppressor p14(ARF) and the viral oncogenes SV40 LT and adenovirus E1A that are known to stabilize p53 inhibited dicoumarol-induced p53 degradation. Unlike Mdm-2-mediated degradation, the NQO1-regulated p53 degradation pathway was not associated with accumulation of ubiquitin-conjugated p53. In vitro studies indicate that dicoumarol-induced p53 degradation was ubiquitin-independent and ATP-dependent. Inhibition of NQO1 activity in cells with a temperature-sensitive E1 ubiquitin-activating enzyme induced p53 degradation and inhibited apoptosis at the restrictive temperature without ubiquitination. Mdm-2 failed to induce p53 degradation under these conditions. Our results establish a Mdm-2- and ubiquitin-independent mechanism for proteasomal degradation of p53 that is regulated by NQO1. The lack of NQO1 activity that stabilizes a tumor suppressor such as p53 can explain why humans carrying a polymorphic inactive NQO1 are more susceptible to tumor development.
Insights
A newly discovered pathway regulates the degradation of the tumor suppressor p53 (p53) protein, independent of Mdm-2 and ubiquitination. This NAD(P)H quinone oxidoreductase 1 (NQO1)-regulated pathway explains increased tumor susceptibility in individuals with inactive NQO1.
Area of Science:
- Molecular Biology
- Cancer Biology
- Biochemistry
Background:
- The tumor suppressor p53 (p53) protein is crucial for preventing cancer.
- p53 levels are primarily regulated by the Mdm-2-ubiquitin-proteasome pathway.
- Understanding alternative p53 regulation mechanisms is vital for cancer research.
Purpose of the Study:
- To identify and characterize novel pathways regulating p53 proteasomal degradation.
- To investigate the role of NAD(P)H quinone oxidoreductase 1 (NQO1) in p53 regulation.
- To explore the implications of NQO1-mediated p53 degradation in cancer susceptibility.
Main Methods:
- Utilized dicoumarol to inhibit NQO1 activity in cellular models.
- Examined p53 and p73 protein levels and degradation.
- Investigated p53 ubiquitination status and dependence on ubiquitin-activating enzyme.
- Assessed the impact of NQO1 inhibition on apoptosis and p53 degradation.
Main Results:
- Inhibition of NQO1 by dicoumarol induced p53 and p73 proteasomal degradation.
- This NQO1-regulated degradation was independent of Mdm-2 and p53 ubiquitination.
- A mutant p53 resistant to Mdm-2 was still degraded by the NQO1 pathway.
- NQO1 inhibition led to p53 degradation and inhibited apoptosis, even without ubiquitination.
Conclusions:
- Established a novel Mdm-2- and ubiquitin-independent mechanism for p53 proteasomal degradation regulated by NQO1.
- Lack of NQO1 activity stabilizes p53, potentially explaining increased tumor risk in individuals with inactive NQO1.
- This finding provides new insights into p53 regulation and cancer development.
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