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

Molecular Cancer
|June 13, 2008
PubMed
Abstract

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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