Ultraslow oligomerization equilibria of p53 and its implications

Eviatar Natan1, Daniel Hirschberg, Nina Morgner

  • 1Medical Research Council Centre for Protein Engineering, Cambridge CB2 0QH, United Kingdom.

Insights

Tumor suppressor p53 tetramer formation is slow, impacting its function. Mutant p53

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Cancer Research

Background:

  • The tumor suppressor p53 protein exists as dimers and tetramers.
  • Oncogenic mutant p53 (mut) can inhibit wild-type p53 (wt) function through a dominant-negative effect.
  • Hetero-tetramers of wt and mut p53 are thought to have reduced activity.

Purpose of the Study:

  • To directly measure the composition and formation rates of p53 complexes.
  • To investigate the kinetics of p53 tetramerization and its role in the dominant-negative effect.
  • To understand the influence of DNA binding on p53 oligomerization.

Main Methods:

  • Electrospray mass spectrometry on isotopically labeled p53 samples.
  • Analysis of p53 complex formation in the presence and absence of DNA response elements.
  • Kinetic measurements of tetramer dissociation and dimer association.

Main Results:

  • Tetramer dissociation of p53 is unexpectedly slow (t(1/2) = 40 min at 37°C).
  • Dimer association is also slow, taking approximately four times longer than tetramer dissociation.
  • Mixing wt and mut p53 with DNA resulted in wt(4)xDNA, wt(2)mut(2)xDNA, and mut(4)xDNA complexes with significantly weakened affinities for mut p53.

Conclusions:

  • The slow oligomerization kinetics of free p53 compete with spontaneous denaturation.
  • The dominant-negative effect of mutant p53 is explained by weakened DNA binding affinity of hetero-tetramers.
  • Binding proteins and DNA may regulate p53 function by modulating tetramerization kinetics and equilibria.

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