Related Experiment Video
Updated: Aug 19, 2026

Development and Application of Rapamycin-regulated Tyrosine Phosphatases
Published on: September 6, 2024
Mechanisms of action of rapamycin in gliomas
Amy B Heimberger1, Enze Wang, Eric C McGary
1Brain Tumor Center, Department of Neurosurgery, The University of Texas M.D. Anderson Cancer Center, Houston, TX 77030, USA. aheimber@mdanderson.org
Abstract:
Rapamycin has previously been shown to be efficacious against intracerebral glioma xenografts and to act in a cytostatic manner against gliomas. However, very little is known about the mechanism of action of rapamycin. The purpose of our study was to further investigate the in vitro and in vivo mechanisms of action of rapamycin, to elucidate molecular end points that may be applicable for investigation in a clinical trial, and to examine potential mechanisms of treatment failure. In the phosphatase and tensin homolog deleted from chromosome 10 (PTEN)-null glioma cell lines U-87 and D-54, but not the oligodendroglioma cell line HOG (PTEN null), doses of rapamycin at the IC50 resulted in accumulation of cells in G1, with a corresponding decrease in the fraction of cells traversing the S phase as early as 24 h after dosing. All glioma cell lines tested had markedly diminished production of vascular endothelial growth factor (VEGF) when cultured with rapamycin, even at doses below the IC50. After 48 h of exposure to rapamycin, the glioma cell lines (but not HOG cells) showed downregulation of the membrane type-1 matrix metalloproteinase (MMP) invasion molecule. In U-87 cells, MMP-2 was downregulated, and in D-54 cells, both MMP-2 and MMP-9 were downregulated after treatment with rapamycin. Treatment of established subcutaneous U-87 xenografts in vivo resulted in marked tumor regression (P < 0.05). Immunohistochemical studies of subcutaneous U-87 tumors demonstrated diminished production of VEGF in mice treated with rapamycin. Gelatin zymography showed marked reduction of MMP-2 in the mice with subcutaneous U-87 xenografts that were treated with rapamycin as compared with controls treated with phosphatebuffered saline. In contrast, treatment of established intracerebral U-87 xenografts did not result in increased median survival despite inhibition of the Akt pathway within the tumors. Also, in contrast with our findings for subcutaneous tumors, immunohistochemistry and quantitative Western blot analysis results for intracerebral U-87 xenografts indicated that there is not significant VEGF production, which suggests possible deferential regulation of the hypoxia-inducible factor 1alpha in the intracerebral compartment. These findings demonstrate that the complex operational mechanisms of rapamycin against gliomas include cytostasis, anti-VEGF, and anti-invasion activity, but these are dependent on the in vivo location of the tumor and have implications for the design of a clinical trial.
Insights
Rapamycin exhibits anti-glioma effects through cytostasis and by inhibiting vascular endothelial growth factor (VEGF) and invasion. However, its efficacy varies depending on tumor location, impacting clinical trial design for glioma treatment.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Rapamycin demonstrates efficacy against gliomas, acting as a cytostatic agent.
- The precise mechanisms of rapamycin's action in gliomas remain incompletely understood.
- Investigating these mechanisms is crucial for optimizing clinical trial strategies.
Purpose of the Study:
- To elucidate the in vitro and in vivo mechanisms of rapamycin's action against gliomas.
- To identify molecular targets for rapamycin in clinical glioma trials.
- To explore potential reasons for treatment failure with rapamycin.
Main Methods:
- In vitro studies using PTEN-null glioma cell lines (U-87, D-54) and an oligodendroglioma cell line (HOG).
- Assessment of cell cycle progression, vascular endothelial growth factor (VEGF) production, and matrix metalloproteinase (MMP) activity.
- In vivo studies using subcutaneous and intracerebral U-87 xenografts in mice, with immunohistochemistry and Western blot analysis.
Main Results:
- Rapamycin induced G1 cell cycle arrest and decreased S-phase fraction in U-87 and D-54 cells.
- Rapamycin significantly reduced VEGF production and downregulated MMP-2 and/or MMP-9 in glioma cell lines and subcutaneous xenografts.
- While subcutaneous tumors showed regression, intracerebral tumors did not exhibit increased survival, despite Akt pathway inhibition and lower VEGF levels.
Conclusions:
- Rapamycin exhibits cytostatic, anti-VEGF, and anti-invasion activities against gliomas.
- The effectiveness of rapamycin is influenced by the tumor's in vivo location (subcutaneous vs. intracerebral).
- These findings have significant implications for designing future clinical trials involving rapamycin for glioma treatment.
Related Concept Videos
mTOR Signaling and Cancer Progression
The mTOR pathway or the...
PI3K/mTOR/AKT Signaling Pathway
Experimental RNAi
