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Updated: May 24, 2025

MitoCeption: Transferring Isolated Human MSC Mitochondria to Glioblastoma Stem Cells
Published on: February 22, 2017
Impact of celastrol on mitochondrial dynamics and proliferation in glioblastoma
Lei Liang1,2, Wenying Lv3, Gang Cheng4
1Medical School of Chinese PLA, Beijing, 100853, China.
Background:
Targeting mitochondrial dynamics offers promising strategies for treating glioblastoma multiforme. Celastrol has demonstrated therapeutic effects on various cancers, but its impact on mitochondrial dynamics in glioblastoma multiforme remains largely unknown. We studied the effects of Celastrol on mitochondrial dynamics, redox homeostasis, and the proliferation.
Methods:
Mito-Tracker Green staining was conducted on U251, LN229, and U87-MG cells to evaluate the effects of Celastrol on mitochondrial dynamics. The Western blot analysis quantified the expression levels of mitochondrial dynamin, antioxidant enzymes, and cell cycle-related proteins. JC-1 staining was performed to discern mitochondrial membrane potential. Mitochondrial reactive oxygen species were identified using MitoSOX. The proliferative capacity of cells was assessed using Cell Counting Kit-8 analysis, and colony formation assays. Survival analysis was employed to evaluate the therapeutic efficacy of Celastrol in C57BL/6J mice with glioblastoma.
Results:
Our findings suggest that Celastrol (1 and 1.5 µM) promotes mitochondrial fission by downregulating the expression of mitofusin-1. A decrease in mitochondrial membrane potential at 1 and 1.5 µM indicates that Celastrol impaired mitochondrial function. Concurrently, an increase in mitochondrial reactive oxygen species and impaired upregulation of antioxidant enzymes were noted at 1.5 µM, indicating that Celastrol led to an imbalance in mitochondrial redox homeostasis. At both 1 and 1.5 µM, cell proliferation was inhibited, which may be related to the decreased expression levels of Cyclin-dependent kinase 1 and Cyclin B1. Celastrol extended the survival of GBM-afflicted mice.
Conclusion:
Celastrol promotes mitochondrial fission in glioblastoma multiforme cells by reducing mitofusin-1 expression, accompanying mitochondrial dysfunction, lower mitochondrial membrane potential, heightened oxidative stress, and decreased Cyclin-dependent kinase 1 and Cyclin B1 levels. This indicates that Celastrol possesses potential for repurposing as an agent targeting mitochondrial dynamics in glioblastoma multiforme, warranting further investigation.
Insights
Celastrol induces mitochondrial fission and dysfunction in glioblastoma cells, inhibiting proliferation and extending survival in mice. This suggests Celastrol as a potential therapeutic agent targeting mitochondrial dynamics in glioblastoma multiforme.
Area of Science:
- Mitochondrial dynamics and cancer biology
- Pharmacological targeting of glioblastoma multiforme
Background:
- Mitochondrial dynamics are crucial in glioblastoma multiforme (GBM) pathogenesis.
- Celastrol shows anti-cancer effects but its role in GBM mitochondrial dynamics is unexplored.
- This study investigates Celastrol's impact on GBM mitochondrial dynamics, redox balance, and proliferation.
Purpose of the Study:
- To determine Celastrol's effects on mitochondrial dynamics in glioblastoma cells.
- To assess Celastrol's influence on cellular redox homeostasis and proliferation.
- To evaluate Celastrol's therapeutic potential in a mouse model of glioblastoma.
Main Methods:
- Cellular assays (Mito-Tracker Green, JC-1, MitoSOX, CCK-8, colony formation) were used.
- Western blot analysis quantified key protein expression levels.
- In vivo survival analysis was performed in a mouse glioblastoma model.
Main Results:
- Celastrol promoted mitochondrial fission by downregulating mitofusin-1 expression.
- Celastrol decreased mitochondrial membrane potential and increased oxidative stress.
- Celastrol inhibited cell proliferation and extended survival in glioblastoma-afflicted mice.
Conclusions:
- Celastrol induces mitochondrial fission, dysfunction, and oxidative stress in glioblastoma cells.
- Celastrol reduces proliferation via decreased Cyclin-dependent kinase 1 and Cyclin B1.
- Celastrol shows promise for repurposing as a mitochondrial-targeting agent for glioblastoma.
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