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Updated: Dec 9, 2025

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53 drives a transcriptional program that elicits a non-cell-autonomous response and alters cell state in vivo
Sydney M Moyer1,2, Amanda R Wasylishen2, Yuan Qi3
1Genetics and Epigenetics Program, The University of Texas MD Anderson Cancer Center UTHealth Graduate School of Biomedical Sciences, Houston, TX 77030.
Abstract:
Cell stress and DNA damage activate the tumor suppressor p53, triggering transcriptional activation of a myriad of target genes. The molecular, morphological, and physiological consequences of this activation remain poorly understood in vivo. We activated a p53 transcriptional program in mice by deletion of Mdm2, a gene that encodes the major p53 inhibitor. By overlaying tissue-specific RNA-sequencing data from pancreas, small intestine, ovary, kidney, and heart with existing p53 chromatin immunoprecipitation (ChIP) sequencing, we identified a large repertoire of tissue-specific p53 genes and a common p53 transcriptional signature of seven genes, which included Mdm2 but not p21 Global p53 activation caused a metaplastic phenotype in the pancreas that was missing in mice with acinar-specific p53 activation, suggesting non-cell-autonomous effects. The p53 cellular response at single-cell resolution in the intestine altered transcriptional cell state, leading to a proximal enterocyte population enriched for genes within oxidative phosphorylation pathways. In addition, a population of active CD8+ T cells was recruited. Combined, this study provides a comprehensive profile of the p53 transcriptional response in vivo, revealing both tissue-specific transcriptomes and a unique signature, which were integrated to induce both cell-autonomous and non-cell-autonomous responses and transcriptional plasticity.
Insights
Cell stress activates tumor suppressor p53, influencing gene expression. This study reveals tissue-specific p53 targets and non-cell-autonomous effects in vivo.
Area of Science:
- Molecular biology
- Genetics
- Cancer research
Background:
- Cellular stress and DNA damage activate the tumor suppressor p53.
- The in vivo consequences of p53 activation are not fully understood.
- MDM2 is the primary inhibitor of p53.
Purpose of the Study:
- To investigate the in vivo transcriptional consequences of p53 activation.
- To identify tissue-specific and common p53 target genes.
- To understand the cellular and physiological effects of p53 activation.
Main Methods:
- Activated p53 transcriptional program in mice via MDM2 deletion.
- Utilized tissue-specific RNA-sequencing (pancreas, small intestine, ovary, kidney, heart).
- Integrated RNA-seq data with p53 chromatin immunoprecipitation (ChIP) sequencing.
Main Results:
- Identified a large set of tissue-specific p53 genes.
- Discovered a common p53 transcriptional signature of seven genes (including MDM2, excluding p21).
- Observed a metaplastic phenotype in the pancreas due to global p53 activation, suggesting non-cell-autonomous effects.
- p53 activation in the intestine altered cell states, promoting oxidative phosphorylation pathways and recruiting CD8+ T cells.
Conclusions:
- Provides a comprehensive profile of the in vivo p53 transcriptional response.
- Reveals both tissue-specific and common p53 gene signatures.
- Demonstrates that p53 activation induces cell-autonomous and non-cell-autonomous responses, leading to transcriptional plasticity.
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