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Updated: Jul 4, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Resistance of mitochondrial p53 to dominant inhibition
Kristina Heyne1, Katrin Schmitt, Daniel Mueller
1Internal Medicine I, José-Carreras-Research Center, Bldg, 45,3, University of Saarland Medical School, 66421 Homburg/Saar, Germany. kristinaheyne@aol.com
Background:
Mutation of a tumor suppressor allele leaves the second as backup. Not necessarily so with p53. This homo-tetrameric transcription factor can become contaminated with mutant p53 through hetero-tetramerization. In addition, it can be out-competed by the binding to p53 DNA recognition motifs of transactivation-incompetent isoforms (DeltaN and DeltaTA-isoforms) of the p53/p63/p73 family of proteins. Countermeasures against such dominant-negative or dominant-inhibitory action might include the evolutionary gain of novel, transactivation-independent tumor suppressor functions by the wild-type monomer.
Results:
Here we have studied, mostly in human HCT116 colon adenocarcinoma cells with an intact p53 pathway, the effects of dominant-inhibitory p53 mutants and of Deltaex2/3p73, a tumor-associated DeltaTA-competitor of wild-type p53, on the nuclear transactivation-dependent and extra-nuclear transactivation-independent functions of wild-type p53. We report that mutant p53 and Deltaex2/3p73, expressed from a single gene copy per cell, interfere with the stress-induced expression of p53-responsive genes but leave the extra-nuclear apoptosis by mitochondrial p53 largely unaffected, although both wild-type and mutant p53 associate with the mitochondria. In accord with these observations, we present evidence that in contrast to nuclear p53 the vast majority of mitochondrial p53, be it wild-type or mutant, is consisting of monomeric protein.
Conclusion:
The extra-nuclear p53-dependent apoptosis may constitute a fail-safe mechanism against dominant inhibition.
Insights
Wild-type p53’s nuclear functions are inhibited by mutant p53 and certain p53 isoforms. However, extra-nuclear apoptosis mediated by mitochondrial p53 remains largely unaffected, suggesting a fail-safe mechanism against dominant inhibition.
Area of Science:
- Molecular Biology
- Cancer Biology
- Cellular Signaling
Background:
- The tumor suppressor p53 protein can be inhibited by mutant p53 through hetero-tetramerization.
- Transactivation-incompetent p53 family isoforms can also inhibit wild-type p53 by competing for DNA binding.
- Wild-type p53 may possess transactivation-independent functions as a tumor suppressor mechanism.
Purpose of the Study:
- To investigate the effects of dominant-inhibitory p53 mutants and p73 isoforms on wild-type p53 functions.
- To differentiate between nuclear and extra-nuclear p53 activities in the presence of inhibitory factors.
- To explore the role of mitochondrial p53 in cellular apoptosis.
Main Methods:
- Studied human HCT116 colon adenocarcinoma cells with an intact p53 pathway.
- Expressed dominant-inhibitory p53 mutants and Deltaex2/3p73 (a DeltaTA-competitor).
- Analyzed stress-induced gene expression, nuclear transactivation, and extra-nuclear apoptosis.
Main Results:
- Mutant p53 and Deltaex2/3p73 interfered with stress-induced p53-responsive gene expression.
- Extra-nuclear apoptosis mediated by mitochondrial p53 was largely unaffected by these inhibitors.
- Both wild-type and mutant p53 proteins associate with mitochondria, where p53 is predominantly monomeric.
Conclusions:
- Extra-nuclear p53-dependent apoptosis may serve as a crucial fail-safe mechanism against dominant inhibition of p53.
- Mitochondrial localization and monomeric state of p53 might be key to its unaffected apoptotic function.
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