Inactivation of Tp53 and Pten drives rapid development of pleural and peritoneal malignant mesotheliomas

Eleonora Sementino1, Craig W Menges1, Yuwaraj Kadariya1

  • 1Cancer Biology Program, Fox Chase Cancer Center, Philadelphia, Pennsylvania.

Insights

Loss of Pten and Tp53 rapidly drives aggressive malignant mesothelioma (MM) in mice. This genetic combination leads to DNA repair failure, genomic instability, and Akt-mTOR activation, promoting tumor growth and therapeutic resistance in MM.

Area of Science:

  • Oncology
  • Cancer Biology
  • Molecular Genetics

Background:

  • Malignant mesothelioma (MM) is a rare, aggressive cancer with limited therapeutic options.
  • Key genetic alterations in MM include CDKN2A, BAP1, NF2, and TP53.
  • Hyperactivation of the PI3K-PTEN-AKT-mTOR pathway is implicated in MM survival and resistance.

Purpose of the Study:

  • To investigate the role of combined Pten and Tp53 inactivation in driving MM development.
  • To elucidate the molecular mechanisms underlying MM formation due to these genetic losses.
  • To identify potential therapeutic targets based on genetic alterations in human MM.

Main Methods:

  • Inactivation of Pten and Tp53 genes in mouse mesothelial cells using Cre-lox technology.
  • Induction of MM via intraperitoneal or intrapleural injection of adenovirus expressing Cre recombinase.
  • Analysis of MM cell characteristics, including signaling pathway activation, genomic stability, and gene expression.
  • Mining The Cancer Genome Atlas (TCGA) dataset for co-deletion patterns of PTEN, TP53, and CDKN2A/p14ARF in human MM.

Main Results:

  • Combined Pten and Tp53 loss in mouse mesothelium rapidly induced aggressive peritoneal and pleural MM.
  • Induced MM cells exhibited activated Akt-mTOR signaling, chromosome instability, and Myc upregulation.
  • Occasional Bap1 downregulation was observed in MM cells.
  • Approximately 25% of human MM cases in TCGA showed co-deletions of PTEN, TP53, and/or CDKN2A/p14ARF.

Conclusions:

  • Cooperative loss of Pten and Tp53 is sufficient to drive aggressive MM by impairing DNA repair and promoting survival signaling.
  • Genomic instability and Akt-mTOR pathway activation are critical events in Pten/Tp53-driven MM.
  • These findings highlight the importance of PTEN, TP53, and CDKN2A/p14ARF in MM pathogenesis and suggest them as potential therapeutic targets.

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