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Sinularin Induces Oxidative Stress-Mediated Apoptosis and Mitochondrial Dysfunction, and Inhibits Angiogenesis in
Shih-Yuan Hsu1,2, Zhi-Hong Wen1, Po-Chang Shih1,3
1Department of Marine Biotechnology and Resources, National Sun Yat-Sen University, Kaohsiung 80424, Taiwan.
Abstract:
Glioblastoma multiforme (GBM) is a cancer of largely unknown cause that leads to a 5-year survival rate of approximately 7% in the United States. Current treatment strategies are not effective, indicating a strong need for the development of novel therapies. In this study, the outcomes of sinularin, a marine-derived product, were evaluated against GBM. Our cellular studies using GBM cells revealed that sinularin induces cell death. The measured half maximal inhibitory concentrations (IC50) values ranged from 30 to 6 μM at 24-72 h. Cell death was induced via the generation of ROS leading to mitochondria-mediated apoptosis. This was evidenced by annexin V/propidium iodine staining and an upregulation of cleaved forms of the pro-apoptotic proteins caspase 9, 3, and PARP, and supported by CellROXTM Green, MitoSOXTM Red, and CM-H2DCFDA staining methods. In addition, we observed a downregulation of the antioxidant enzymes SOD1/2 and thioredoxin. Upon treatment with sinularin at the ~IC50 concentration, mitochondrial respiration capacities were significantly reduced, as shown by measuring the oxygen consumption rates and enzymatic complexes of oxidative phosphorylation. Intriguingly, sinularin significantly inhibited indicators of angiogenesis such as vessel tube formation, cell migration, and cell mobility in human umbilical vein endothelial cells or the fusion cell line EA.Hy926. Lastly, in a transgenic zebrafish model, intersegmental vessel formation was also significantly inhibited by sinularin treatment. These findings indicate that sinularin exerts anti-brain cancer properties that include apoptosis induction but also antiangiogenesis.
Insights
Sinularin, a marine compound, effectively induces glioblastoma cell death through apoptosis and inhibits angiogenesis. This marine-derived product shows promise as a novel therapy for brain cancer.
Area of Science:
- Marine natural products
- Cancer biology
- Apoptosis and angiogenesis
Background:
- Glioblastoma multiforme (GBM) has a poor prognosis with limited effective treatments.
- Novel therapeutic strategies are urgently needed for GBM.
- Marine-derived compounds are a potential source for new cancer drugs.
Purpose of the Study:
- To evaluate the anti-cancer effects of sinularin against glioblastoma.
- To investigate the mechanisms of sinularin-induced cell death and anti-angiogenic properties.
Main Methods:
- In vitro studies using GBM cells and endothelial cells.
- Analysis of apoptosis markers (caspase 9, 3, PARP), reactive oxygen species (ROS), and mitochondrial function.
- Assessment of angiogenesis indicators (tube formation, cell migration).
- In vivo studies using a transgenic zebrafish model.
Main Results:
- Sinularin induced GBM cell death with IC50 values of 30-6 μM.
- Cell death occurred via ROS generation, mitochondria-mediated apoptosis, and downregulation of antioxidant enzymes.
- Mitochondrial respiration and oxidative phosphorylation were significantly reduced.
- Sinularin inhibited angiogenesis in vitro and in vivo.
Conclusions:
- Sinularin demonstrates potent anti-glioblastoma activity by inducing apoptosis.
- Sinularin possesses significant anti-angiogenic properties.
- Sinularin is a promising marine-derived candidate for novel brain cancer therapies.
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