Differential response of glioma cells to FOXO1-directed therapy

Cara J Lau1, Zaf Koty, Josephine Nalbantoglu

  • 1Department of Experimental Medicine, McGill University, Montreal, Quebec, Canada.

Cancer Research
|June 25, 2009
PubMed

Insights

Targeting FOXO1, a key regulator in brain tumors like glioblastoma, can induce cancer cell death. A modified FOXO1 factor showed promise in glioma treatment, though resistance mechanisms require further investigation.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Gliomas, particularly glioblastoma multiforme, are aggressive brain tumors with poor prognosis.
  • The phosphatidylinositol 3-kinase (PI3K)-Akt signaling pathway is frequently dysregulated in gliomas.
  • PTEN mutations lead to Akt activation, inactivating FOXO transcription factors crucial for cell death and cycle arrest.

Purpose of the Study:

  • To investigate the therapeutic potential of a constitutively active mutant FOXO1 in PTEN-null glioma cells.
  • To explore mechanisms of resistance to mutant FOXO1-mediated cell death in U87 glioma cells.

Main Methods:

  • Adenovirus-mediated gene transfer of a mutant FOXO1 resistant to Akt phosphorylation.
  • In vitro cell cycle arrest and cell death assays.
  • In vivo xenograft models of human glioma.
  • Analysis of FOXO1 phosphorylation and nuclear export.

Main Results:

  • Mutant FOXO1 induced cell cycle arrest and cell death in U251 and U87 glioma cells.
  • Adenovirus-mediated FOXO1 gene transfer prolonged survival in glioma xenograft models.
  • U87 cells exhibited resistance to mutant FOXO1 due to increased nuclear export and Akt-independent phosphorylation at S249.
  • Inhibition of cyclin-dependent kinase 2 sensitized U87 cells to mutant FOXO1-induced death.

Conclusions:

  • Targeting FOXO1 is a viable strategy for inducing glioma cell death and inhibiting tumor growth.
  • Akt-independent phosphorylation and nuclear export of FOXO1 represent key resistance mechanisms to this therapy.

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