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Updated: Jun 22, 2026

Fluorescence Molecular Tomography for In Vivo Imaging of Glioblastoma Xenografts
Published on: April 26, 2018
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.
Abstract:
Gliomas are the most common adult primary brain tumors, and the most malignant form, glioblastoma multiforme, is invariably fatal. The phosphatidylinositol 3-kinase (PI3K)-Akt signaling pathway is altered in most glioblastoma multiforme. PTEN, an important negative regulator of the PI3K-Akt pathway, is also commonly mutated in glioma, leading to constitutive activation of Akt. One ultimate consequence is phosphorylation and inactivation of FOXO forkhead transcription factors that regulate genes involved in apoptosis, cell cycle arrest, nutrient availability, DNA repair, stress, and angiogenesis. We tested the ability of a mutant FOXO1 factor that is not subject to Akt phosphorylation to overcome dysregulated PI3K-Akt signaling in two PTEN-null glioma cell lines, U87 and U251. Adenovirus-mediated gene transfer of the mutant FOXO1 successfully restored cell cycle arrest and induced cell death in vitro and prolonged survival in vivo in xenograft models of human glioma (33% survival at 1 year of animals bearing U251 tumors). However, U87 were much more resistant than U251 to mutant FOXO1-induced death, showing evidence of increased nuclear export and Akt-independent phosphorylation of FOXO1 at S249. A cyclin-dependent kinase 2 inhibitor decreased phosphorylation of S249 and rendered U87 cells significantly more susceptible to mutant FOXO1-induced death. Our results indicate that targeting FOXO1, which is at the convergence point of several growth factor receptor tyrosine kinase pathways, can effectively induce glioma cell death and inhibit tumor growth. They also highlight the importance of Akt-independent phosphorylation events in the nuclear export of FOXO1.
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.
