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Updated: May 7, 2026

Purification of Ubiquitinated p53 Proteins from Mammalian Cells
Published on: March 21, 2022
Extensive post-translational modification of active and inactivated forms of endogenous p53
Caroline J DeHart1, Jasdave S Chahal, S J Flint
1Department of Molecular Biology, Lewis Thomas Laboratory, Princeton University, Princeton, New Jersey 08544.
Abstract:
The p53 tumor suppressor protein accumulates to very high concentrations in normal human fibroblasts infected by adenovirus type 5 mutants that cannot direct assembly of the viral E1B 55-kDa protein-containing E3 ubiquitin ligase that targets p53 for degradation. Despite high concentrations of nuclear p53, the p53 transcriptional program is not induced in these infected cells. We exploited this system to examine select post-translational modifications (PTMs) present on a transcriptionally inert population of endogenous human p53, as well as on p53 activated in response to etoposide treatment of normal human fibroblasts. These forms of p53 were purified from whole cell lysates by means of immunoaffinity chromatography and SDS-PAGE, and peptides derived from them were subjected to nano-ultra-high-performance LC-MS and MS/MS analyses on a high-resolution accurate-mass MS platform (data available via ProteomeXchange, PXD000464). We identified an unexpectedly large number of PTMs, comprising phosphorylation of Ser and Thr residues, methylation of Arg residues, and acetylation, ubiquitinylation, and methylation of Lys residues-for example, some 150 previously undescribed modifications of p53 isolated from infected cells. These modifications were distributed across all functional domains of both forms of the endogenous human p53 protein, as well as those of an orthologous population of p53 isolated from COS-1 cells. Despite the differences in activity, including greater in vitro sequence-specific DNA binding activity exhibited by p53 isolated from etoposide-treated cells, few differences were observed in the location, nature, or relative frequencies of PTMs on the two populations of human p53. Indeed, the wealth of PTMs that we have identified is consistent with a far greater degree of complex, combinatorial regulation of p53 by PTM than previously anticipated.
Insights
Adenovirus infection prevents p53 protein from activating genes, despite high levels. Researchers found numerous post-translational modifications (PTMs) on this inactive p53, suggesting complex regulation.
Area of Science:
- Molecular Biology
- Virology
- Cancer Research
Background:
- The p53 tumor suppressor is crucial for preventing cancer.
- Adenovirus type 5 mutants lacking the E1B 55-kDa protein lead to p53 accumulation without transcriptional activation.
- This creates a unique system to study transcriptionally inert p53.
Purpose of the Study:
- To investigate post-translational modifications (PTMs) on transcriptionally inert p53 in adenovirus-infected cells.
- To compare these PTMs with those on transcriptionally active p53 induced by etoposide.
- To understand the complex regulatory mechanisms governing p53 function.
Main Methods:
- Utilized adenovirus type 5 mutants to generate transcriptionally inert p53 in human fibroblasts.
- Purified p53 from both infected and etoposide-treated cells using immunoaffinity chromatography and SDS-PAGE.
- Analyzed p53 peptides using nano-ultra-high-performance LC-MS and MS/MS on a high-resolution accurate-mass MS platform.
Main Results:
- Identified a large number of PTMs on p53, including phosphorylation, methylation, acetylation, and ubiquitinylation.
- Discovered approximately 150 previously undescribed modifications on p53 from infected cells.
- Observed similar PTM patterns and distributions across functional domains in both inert and active p53 populations, despite differences in DNA binding activity.
Conclusions:
- The extensive PTMs suggest a highly complex, combinatorial regulation of p53.
- Transcriptionally inert p53 is extensively modified, challenging previous assumptions about p53 regulation.
- Further research into p53 PTMs is warranted to fully elucidate its role in tumor suppression and viral interactions.
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