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Therapeutic Strategy for Targeting Aggressive Malignant Gliomas by Disrupting Their Energy Balance
Ahmed M Hegazy1, Daisuke Yamada1, Masahiko Kobayashi1
1From the Division of Molecular Genetics.
Abstract:
Although abnormal metabolic regulation is a critical determinant of cancer cell behavior, it is still unclear how an altered balance between ATP production and consumption contributes to malignancy. Here we show that disruption of this energy balance efficiently suppresses aggressive malignant gliomas driven by mammalian target of rapamycin complex 1 (mTORC1) hyperactivation. In a mouse glioma model, mTORC1 hyperactivation induced by conditional Tsc1 deletion increased numbers of glioma-initiating cells (GICs) in vitro and in vivo Metabolic analysis revealed that mTORC1 hyperactivation enhanced mitochondrial biogenesis, as evidenced by elevations in oxygen consumption rate and ATP production. Inhibition of mitochondrial ATP synthetase was more effective in repressing sphere formation by Tsc1-deficient glioma cells than that by Tsc1-competent glioma cells, indicating a crucial function for mitochondrial bioenergetic capacity in GIC expansion. To translate this observation into the development of novel therapeutics targeting malignant gliomas, we screened drug libraries for small molecule compounds showing greater efficacy in inhibiting the proliferation/survival of Tsc1-deficient cells compared with controls. We identified several compounds able to preferentially inhibit mitochondrial activity, dramatically reducing ATP levels and blocking glioma sphere formation. In human patient-derived glioma cells, nigericin, which reportedly suppresses cancer stem cell properties, induced AMPK phosphorylation that was associated with mTORC1 inactivation and induction of autophagy and led to a marked decrease in sphere formation with loss of GIC marker expression. Furthermore, malignant characteristics of human glioma cells were markedly suppressed by nigericin treatment in vivo Thus, targeting mTORC1-driven processes, particularly those involved in maintaining a cancer cell's energy balance, may be an effective therapeutic strategy for glioma patients.
Insights
Disrupting cancer cell energy balance suppresses aggressive malignant gliomas. Targeting mammalian target of rapamycin complex 1 (mTORC1) pathways and mitochondrial ATP production offers a novel therapeutic strategy for glioma.
Area of Science:
- Oncology
- Cancer Metabolism
- Cell Biology
Background:
- Abnormal metabolic regulation is crucial for cancer cell behavior.
- The precise role of altered ATP production/consumption balance in malignancy remains unclear.
- Mammalian target of rapamycin complex 1 (mTORC1) hyperactivation drives aggressive glioma growth.
Purpose of the Study:
- To investigate how disrupting cellular energy balance affects aggressive gliomas.
- To identify therapeutic strategies targeting mTORC1-driven glioma processes.
Main Methods:
- Utilized a mouse glioma model with Tsc1 deletion to induce mTORC1 hyperactivation.
- Performed metabolic analysis, including oxygen consumption rate and ATP production measurements.
- Screened drug libraries for compounds selectively inhibiting Tsc1-deficient glioma cells and tested nigericin on human glioma cells.
Main Results:
- mTORC1 hyperactivation enhanced mitochondrial biogenesis and ATP production, promoting glioma-initiating cell (GIC) expansion.
- Inhibition of mitochondrial ATP synthetase preferentially suppressed Tsc1-deficient GIC sphere formation.
- Identified compounds that inhibit mitochondrial activity, reduce ATP levels, and block glioma sphere formation.
- Nigericin treatment inactivated mTORC1, induced autophagy, reduced GIC markers, and suppressed malignant characteristics in human glioma cells both in vitro and in vivo.
Conclusions:
- Disrupting the energy balance in cancer cells can suppress aggressive malignant gliomas.
- Targeting mTORC1-driven metabolic pathways, especially mitochondrial ATP production, is a promising therapeutic strategy for gliomas.
- Nigericin demonstrates potential as a therapeutic agent for malignant gliomas by targeting cancer stem cell properties and energy metabolism.
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