Regulation of human p53 activity and cell localization by alternative splicing

Anirban Ghosh1, Deborah Stewart, Greg Matlashewski

  • 1Department of Microbiology and Immunology, McGill University, 3775 University St., Room 511, Montreal, Quebec, Canada H3A 2B4.

Insights

A newly discovered p53 protein isoform, p47, regulates cancer cell growth by suppressing p53 activity. This alternative splicing mechanism impacts p53 ubiquitination and localization, offering new insights into cancer research.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Genetics

Background:

  • Cancer development involves genetic mutations affecting cell growth and survival pathways.
  • The p53 tumor suppressor protein is crucial for regulating cell proliferation, senescence, and apoptosis, and its pathways are frequently disrupted in cancer.
  • Understanding p53 regulation is vital for cancer research.

Purpose of the Study:

  • To identify novel mechanisms regulating p53 activity in normal and cancer cells.
  • To investigate the role of alternative splicing in p53 regulation.
  • To characterize a newly identified p53 isoform, p47.

Main Methods:

  • Analysis of alternative splicing of the human p53 gene.
  • Expression and functional characterization of the p47 isoform.
  • Assessment of p47's impact on p53 transcriptional activity and growth suppression.
  • Investigation of p47's effect on p53 ubiquitination and cellular localization.

Main Results:

  • A novel p53 mRNA generated by alternative splicing encodes an N-terminally deleted p53 isoform, p47.
  • p47 suppresses p53-mediated transcriptional activity and growth suppression.
  • p47 expression allows for selection of cells coexpressing p53, indicating it modulates p53 function rather than directly inducing cell death.
  • p47 is monoubiquitinated independently of Mdm2, leading to nuclear export.
  • p47 reduces Mdm2-mediated p53 degradation and promotes p53 monoubiquitination and nuclear export.

Conclusions:

  • Alternative splicing of the p53 gene generates the p47 isoform, a novel regulator of p53 activity.
  • p47 influences p53 ubiquitination and subcellular localization, thereby modulating p53's tumor-suppressive functions.
  • This discovery provides new insights into p53 regulation and potential therapeutic targets in cancer.

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