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Updated: Oct 3, 2025

MitoCeption: Transferring Isolated Human MSC Mitochondria to Glioblastoma Stem Cells
Published on: February 22, 2017
Targeting Glioblastoma via Selective Alteration of Mitochondrial Redox State
Akira Sumiyoshi1, Sayaka Shibata1, Zhivko Zhelev2,3
1Department of Molecular Imaging and Theranostics, National Institutes for Quantum and Radiological Science and Technology (QST), 4-9-1 Anagawa, Chiba 263-8555, Inage-ku, Japan.
Abstract:
Glioblastoma is one of the most aggressive brain tumors, characterized by a pronounced redox imbalance, expressed in a high oxidative capacity of cancer cells due to their elevated glycolytic and mitochondrial oxidative metabolism. The assessment and modulation of the redox state of glioblastoma are crucial factors that can provide highly specific targeting and treatment. Our study describes a pharmacological strategy for targeting glioblastoma using a redox-active combination drug. The experiments were conducted in vivo on glioblastoma mice (intracranial model) and in vitro on cell lines (cancer and normal) treated with the redox cycling pair menadione/ascorbate (M/A). The following parameters were analyzed in vivo using MRI or ex vivo on tissue and blood specimens: tumor growth, survival, cerebral perfusion, cellular density, tissue redox state, expression of tumor-associated NADH oxidase (tNOX) and transforming growth factor-beta 1 (TGF-β1). Dose-dependent effects of M/A on cell viability, mitochondrial functionality, and redox homeostasis were evaluated in vitro. M/A treatment suppressed tumor growth and significantly increased survival without adverse side effects. This was accompanied by increased oxidative stress, decreased reducing capacity, and decreased cellular density in the tumor only, as well as increased cerebral perfusion and down-regulation of tNOX and TGF-β1. M/A induced selective cytotoxicity and overproduction of mitochondrial superoxide in isolated glioblastoma cells, but not in normal microglial cells. This was accompanied by a significant decrease in the over-reduced state of cancer cells and impairment of their "pro-oncogenic" functionality, assessed by dose-dependent decreases in: NADH, NAD+, succinate, glutathione, cellular reducing capacity, mitochondrial potential, steady-state ATP, and tNOX expression. The safety of M/A on normal cells was compromised by treatment with cerivastatin, a non-specific prenyltransferase inhibitor. In conclusion, M/A differentiates glioblastoma cells and tissues from normal cells and tissues by redox targeting, causing severe oxidative stress only in the tumor. The mechanism is complex and most likely involves prenylation of menadione in normal cells, but not in cancer cells, modulation of the immune response, a decrease in drug resistance, and a potential role in sensitizing glioblastoma to conventional chemotherapy.
Insights
A novel menadione/ascorbate (M/A) drug combination effectively targets aggressive glioblastoma by inducing oxidative stress selectively in cancer cells. This approach suppressed tumor growth and improved survival without side effects in preclinical models.
Area of Science:
- Oncology
- Biochemistry
- Pharmacology
Background:
- Glioblastoma exhibits significant redox imbalance, with cancer cells showing high oxidative capacity due to elevated metabolism.
- Targeting and modulating the redox state of glioblastoma is critical for effective treatment strategies.
Purpose of the Study:
- To investigate a pharmacological strategy for glioblastoma targeting using a redox-active combination drug, menadione/ascorbate (M/A).
- To evaluate the in vivo and in vitro effects of M/A on glioblastoma growth, survival, and cellular redox homeostasis.
Main Methods:
- Experiments were conducted in vivo on glioblastoma mouse models and in vitro on cancer and normal cell lines.
- Treatment involved the redox cycling pair menadione/ascorbate (M/A).
- Analyzed parameters included tumor growth, survival, cerebral perfusion, cellular density, redox state, tNOX, TGF-β1, cell viability, mitochondrial function, and redox homeostasis.
Main Results:
- M/A treatment suppressed glioblastoma growth and significantly increased survival without adverse effects.
- In tumors, M/A increased oxidative stress, decreased reducing capacity and cellular density, enhanced cerebral perfusion, and downregulated tNOX and TGF-β1.
- M/A induced selective cytotoxicity and mitochondrial superoxide overproduction in glioblastoma cells, not normal cells, decreasing their pro-oncogenic functions.
Conclusions:
- M/A acts as a redox-targeting agent, causing selective oxidative stress in glioblastoma, differentiating it from normal tissues.
- The mechanism involves complex interactions including potential modulation of prenylation, immune response, and drug resistance.
- M/A shows promise for sensitizing glioblastoma to conventional chemotherapy.
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