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.

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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