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Updated: Jun 21, 2026

Purification of Ubiquitinated p53 Proteins from Mammalian Cells
Published on: March 21, 2022
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.
Abstract:
The tumor suppressor p53 is in equilibrium at cellular concentrations between dimers and tetramers. Oncogenic mutant p53 (mut) exerts a dominant-negative effect on co-expression of p53 wild-type (wt) and mut alleles in cancer cells. It is believed that wt and mut form hetero-tetramers of attenuated activity, via their tetramerization domains. Using electrospray mass spectrometry on isotopically labeled samples, we measured directly the composition and rates of formation of p53 complexes in the presence and absence of response element DNA. The dissociation of tetramers was unexpectedly very slow (t(1/2) = 40 min) at 37 degrees C, matched by slow association of dimers, which is approximately four times longer than the half-life of spontaneous denaturation of wt p53. On mixing wt tetramers with the oncogenic contact mutant R273H of low DNA affinity, we observed the same slow formation of only wt(4), wt(2)mut(2), and mut(4), in the ratio 1:2:1, on a cellular time scale. On mixing wt and mut with response element DNAs P21 and BAX, we observed only the complexes wt(4)xDNA, wt(2)mut(2)xDNA, and mut(4)xDNA, with relative dissociation constants 1:4:71 and 1:13:85, respectively, accounting for the dominant-negative effect by weakened affinity. p53 dimers assemble rapidly to tetramers on binding to response element DNA, initiated by the p53 DNA binding domains. The slow oligomerization of free p53, competing with spontaneous denaturation, has implications for the possible regulation of p53 by binding proteins and DNA that affect tetramerization kinetics as well as equilibria.
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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