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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Phosphorylation Control of p53 DNA-Binding Cooperativity Balances Tumorigenesis and Aging
Oleg Timofeev1, Lukas Koch2, Constantin Niederau2
1Institute of Molecular Oncology, Member of the German Center for Lung Research (DZL), Philipps-University Marburg, Marburg, Germany. stiewe@uni-marburg.de timofeev@staff.uni-marburg.de.
Abstract:
Posttranslational modifications are essential for regulating the transcription factor p53, which binds DNA in a highly cooperative manner to control expression of a plethora of tumor-suppressive programs. Here we show at the biochemical, cellular, and organismal level that the cooperative nature of DNA binding is reduced by phosphorylation of highly conserved serine residues (human S183/S185, mouse S180) in the DNA-binding domain. To explore the role of this inhibitory phosphorylation in vivo, new phosphorylation-deficient p53-S180A knock-in mice were generated. Chromatin immunoprecipitation sequencing and RNA sequencing studies of S180A knock-in cells demonstrated enhanced DNA binding and increased target gene expression. In vivo, this translated into a tissue-specific vulnerability of the bone marrow that caused depletion of hematopoietic stem cells and impaired proper regeneration of hematopoiesis after DNA damage. Median lifespan was significantly reduced by 20% from 709 days in wild type to only 568 days in S180A littermates. Importantly, lifespan was reduced by a loss of general fitness and increased susceptibility to age-related diseases, not by increased cancer incidence as often seen in other p53-mutant mouse models. For example, S180A knock-in mice showed markedly reduced spontaneous tumorigenesis and increased resistance to Myc-driven lymphoma and Eml4-Alk-driven lung cancer. Preventing phosphorylation of S183/S185 in human cells boosted p53 activity and allowed tumor cells to be killed more efficiently. Together, our data identify p53 DNA-binding domain phosphorylation as a druggable mechanism that balances tumorigenesis and aging. SIGNIFICANCE: These findings demonstrate that p53 tumor suppressor activity is reduced by DNA-binding domain phosphorylation to prevent aging and identify this phosphorylation as a potential target for cancer therapy.See related commentary by Horikawa, p. 5164.
Insights
Phosphorylation of the p53 protein
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Posttranslational modifications regulate the transcription factor p53, crucial for tumor suppression.
- p53 binds DNA cooperatively to control tumor-suppressive gene expression.
Purpose of the Study:
- To investigate the impact of p53 DNA-binding domain phosphorylation on its function.
- To generate and analyze phosphorylation-deficient p53-S180A knock-in mice.
Main Methods:
- Biochemical, cellular, and organismal studies.
- Generation of p53-S180A knock-in mice.
- Chromatin immunoprecipitation sequencing and RNA sequencing.
Main Results:
- Phosphorylation of serine residues (S183/S185 in human, S180 in mouse) in the p53 DNA-binding domain reduces DNA binding cooperativity.
- p53-S180A knock-in mice exhibit enhanced DNA binding and target gene expression.
- These mice show bone marrow vulnerability, hematopoietic stem cell depletion, impaired regeneration, and reduced lifespan (20% decrease).
- Lifespan reduction is linked to aging and disease susceptibility, not increased cancer incidence; resistance to certain cancers was observed.
- Preventing phosphorylation in human cells enhances p53 activity and tumor cell killing.
Conclusions:
- p53 DNA-binding domain phosphorylation is a druggable mechanism balancing tumorigenesis and aging.
- This phosphorylation reduces p53 tumor suppressor activity to prevent aging.
- Targeting this phosphorylation offers a potential strategy for cancer therapy.
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