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Updated: Nov 17, 2025

MitoCeption: Transferring Isolated Human MSC Mitochondria to Glioblastoma Stem Cells
Published on: February 22, 2017
Ginsenoside F2 induces cellular toxicity to glioblastoma through the impairment of mitochondrial function
Tae-Jun Kim1, Hyeon Ji Kim1, Mingyu Kang1
1Department of Pharmacology, School of Dentistry, Kyungpook National University, Daegu 41940, Republic of Korea.
Background:
Glioblastoma (GBM) is the most aggressive tumor residing within the central nervous system, with extremely poor prognosis. Although the cytotoxic effects of ginsenoside F2 (GF2) on GBM were previously suggested, the precise anti-GBM mechanism of GF2 remains unclear. The aim of this study was to explore the anti-cancer molecular mechanism of GF2 toward human GBM.
Methods:
GF2-driven cellular toxicity was confirmed in two different GBM cells, U373 and Hs683. To test mitochondrial impairment driven by GF2, we examined the mitochondrial membrane potential, OCR, and ATP production. An intracellular redox imbalance was identified by measuring the relative ratio of reduced glutathione to oxidized glutathione (GSH/GSSG), glutaredoxin (GLRX) mRNA expression, intracellular NAD+ level, and AMPK phosphorylation status.
Results:
GF2 increased the percentage of cleaved caspase 3-positive cells and γH2AX signal intensities, confirming that GF2 shows the cytotoxicity against GBM. GO enrichment analysis suggested that the mitochondrial function could be negatively influenced by GF2. GF2 reduced the mitochondrial membrane potential, basal mitochondrial respiratory rate, and ATP production capacity. Our results showed that GF2 downregulated the relative GSH/GSSG, intracellular NAD+ level, and GLRX expression, suggesting that GF2 may alter the intracellular redox balance that led to mitochondrial impairment.
Conclusion:
GF2 reduces mitochondrial membrane potential, inhibits cellular oxygen consumption, activates AMPK signaling, and induces cell death. Our study examined the potential vulnerability of mitochondrial activity in GBM, and this may hold therapeutic promise.
Insights
Ginsenoside F2 (GF2) exhibits anti-cancer effects against glioblastoma (GBM) by impairing mitochondrial function and inducing cell death. This study reveals GF2
Area of Science:
- Molecular Biology
- Cancer Research
- Neuro-oncology
Background:
- Glioblastoma (GBM) is an aggressive brain tumor with a poor prognosis.
- The precise anti-cancer mechanisms of ginsenoside F2 (GF2) in GBM are not fully understood.
- Investigating novel therapeutic strategies for GBM is crucial.
Purpose of the Study:
- To elucidate the anti-cancer molecular mechanism of ginsenoside F2 (GF2) in human glioblastoma (GBM).
- To explore the impact of GF2 on GBM cell viability and mitochondrial function.
- To identify potential therapeutic targets within GBM's metabolic pathways.
Main Methods:
- Assessed GF2-induced cytotoxicity in U373 and Hs683 GBM cell lines.
- Evaluated mitochondrial function by measuring membrane potential, oxygen consumption rate (OCR), and ATP production.
- Analyzed intracellular redox balance through GSH/GSSG ratio, GLRX mRNA, NAD+ levels, and AMPK phosphorylation.
Main Results:
- GF2 demonstrated cytotoxicity by increasing cleaved caspase 3 and γH2AX.
- GF2 negatively impacted mitochondrial function, reducing membrane potential, OCR, and ATP production.
- GF2 altered intracellular redox balance, downregulating GSH/GSSG, NAD+, and GLRX, leading to mitochondrial impairment.
Conclusions:
- GF2 reduces mitochondrial membrane potential, inhibits oxygen consumption, and activates AMPK signaling, inducing GBM cell death.
- Mitochondrial activity represents a potential vulnerability in GBM.
- GF2 shows promise as a therapeutic agent targeting mitochondrial dysfunction in glioblastoma.
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