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Published on: February 3, 2022
Regulation of mitochondrial dynamics in 2-methoxyestradiol-mediated osteosarcoma cell death
Magdalena Gorska-Ponikowska1,2,3, Paulina Bastian4, Agata Zauszkiewicz-Pawlak5
1Department of Medical Chemistry, Medical University of Gdansk, Debinki 1, 80-211, Gdansk, Poland. magdalena.gorska-ponikowska@gumed.edu.pl.
Abstract:
Osteosarcoma (OS) is one of the most malignant tumors of childhood and adolescence. Research on mitochondrial dynamics (fusion/fission) and biogenesis has received much attention in last few years, as they are crucial for death of cancer cells. Specifically, it was shown that increased expression of the cytoplasmic dynamin-related protein 1 (Drp1) triggers mitochondrial fission (division), which activates BAX and downstream intrinsic apoptosis, effectively inhibiting OS growth. In the presented study, human OS cells (metastatic 143B OS cell line) were incubated with 2-methoxyestradiol (2-ME) at both physiologically and pharmacologically relevant concentrations. Cell viability was determined by the MTT assay. Confocal microscopy and western blot methods were applied to examine changes in Drp1 and BAX protein levels. Mitochondrial Division Inhibitor 1, MDIVI-1, was used in the study to further examine the role of Drp1 in 2-ME-mediated mechanism of action. To determine quantitative and qualitative changes in mitochondria, electron microscopy was used. 2-ME at all used concentrations increased mitochondrial fission and induced autophagy in OS cells. At the concentration of 1 µM 2-ME increased the area density of mitochondria in OS cells. Subsequent, upregulated expression of Drp1 and BAX proteins by 2-ME strongly suggests the activation of the intrinsic apoptosis pathway. We further observed 2-ME-mediated regulation of glycolytic state of OS cells. Therefore, we suggest that changes of mitochondrial dynamics may represent a novel mechanism of anticancer action of 2-ME. This finding may open new approaches to improve the efficacy of chemotherapy in the treatment of OS, however, it has to be confirmed by in vivo studies.
Insights
2-methoxyestradiol (2-ME) promotes mitochondrial fission and apoptosis in osteosarcoma (OS) cells. This suggests 2-ME
Area of Science:
- Mitochondrial dynamics and cancer biology
- Cellular and molecular oncology
Background:
- Osteosarcoma (OS) is a highly malignant pediatric cancer.
- Mitochondrial dynamics, including fusion and fission, are critical for cancer cell death.
- Increased cytoplasmic dynamin-related protein 1 (Drp1) induces mitochondrial fission, activating apoptosis and inhibiting OS growth.
Purpose of the Study:
- To investigate the effects of 2-methoxyestradiol (2-ME) on mitochondrial dynamics in human OS cells.
- To elucidate the role of Drp1 in 2-ME-mediated anticancer mechanisms.
- To explore novel therapeutic strategies for OS treatment.
Main Methods:
- Human OS cells (143B cell line) were treated with 2-ME.
- Cell viability assessed using MTT assay.
- Confocal microscopy, western blot, and electron microscopy used to analyze Drp1, BAX, and mitochondrial morphology.
- Mitochondrial Division Inhibitor 1 (MDIVI-1) employed to validate Drp1's role.
Main Results:
- 2-ME induced mitochondrial fission and autophagy in OS cells.
- Upregulated expression of Drp1 and BAX proteins observed, indicating intrinsic apoptosis pathway activation.
- 2-ME influenced the glycolytic state of OS cells.
- 1 µM 2-ME increased mitochondrial area density.
Conclusions:
- 2-ME exhibits anticancer effects in OS cells by modulating mitochondrial dynamics.
- The observed mitochondrial fission and apoptosis suggest a novel anticancer mechanism for 2-ME.
- Further in vivo studies are warranted to confirm these findings for potential therapeutic applications in OS.
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