Blue light induces apoptosis and autophagy by promoting ROS-mediated mitochondrial dysfunction in synovial sarcoma
Makoto Takeuchi1, Toshihiko Nishisho1, Shunichi Toki1
1Department of Orthopedics, Institute of Biomedical Sciences, Tokushima University Graduate School, Tokushima, Japan.
Background:
Synovial sarcoma (SS) has limited treatment options and there is an urgent need to develop a novel therapeutic strategy to treat SS. Blue light (BL) has been shown to inhibit the growth of several cancer cells. However, the efficacy of BL in soft tissue sarcomas such as SS has not been demonstrated, and the detailed mechanism underlying the antitumor activity of BL is not fully understood. In this study, we investigated the antitumor effect of BL on SS.
Methods:
Human SS cell lines were continuously irradiated with BL using light-emitting diodes (LEDs) in an incubator for in vitro analysis. The chicken chorioallantoic membrane (CAM) tumors and xenograft tumors in mice were subjected to daily BL irradiation with LEDs.
Results:
BL caused growth inhibition of SS cells and histological changes in CAM tumors. BL also suppressed the migration and invasion abilities of SS cells. The type of cell death in SS cells was revealed to be apoptosis. Furthermore, BL induced excessive production of reactive oxygen species (ROS) in mitochondria, resulting in oxidative stress and malfunctioned mitochondria. Reducing the production of ROS using N-acetylcysteine (NAC), a ROS scavenger, attenuated the inhibitory effect of BL on SS cells and mitochondrial dysfunction. In addition, BL induced autophagy, which was suppressed by the administration of NAC. The autophagy inhibitor of 3-methyladenine and small interfering RNA against the autophagy marker light chain 3B facilitated apoptotic cell death. Moreover, BL suppressed tumor growth in a mouse xenograft model.
Conclusion:
Taken together, our results revealed that BL induced apoptosis via the ROS-mitochondrial signaling pathway, and autophagy was activated in response to the production of ROS, which protected SS cells from apoptosis. Therefore, BL is a promising candidate for the development of an antitumor therapeutic strategy targeting SS.
Insights
Blue light (BL) effectively inhibits synovial sarcoma (SS) growth by inducing apoptosis through reactive oxygen species (ROS) and mitochondria. Autophagy is activated by ROS but can be overcome to enhance BL
Area of Science:
- Oncology
- Photobiology
- Molecular Biology
Background:
- Synovial sarcoma (SS) presents limited therapeutic options, necessitating novel treatment strategies.
- Blue light (BL) demonstrates anti-cancer effects, but its efficacy and mechanisms in SS remain unelucidated.
Purpose of the Study:
- To investigate the antitumor effects of blue light (BL) on synovial sarcoma (SS).
- To elucidate the underlying mechanisms of BL's anti-SS activity.
Main Methods:
- In vitro irradiation of human SS cell lines with blue light-emitting diodes (LEDs).
- In vivo studies using chicken chorioallantoic membrane (CAM) and mouse xenograft models subjected to daily BL irradiation.
- Assessment of cell death, migration, invasion, reactive oxygen species (ROS) production, mitochondrial function, and autophagy.
Main Results:
- BL significantly inhibited SS cell growth, migration, and invasion, inducing apoptosis.
- BL triggered excessive ROS production in mitochondria, leading to oxidative stress and dysfunction.
- BL-induced autophagy was identified as a protective mechanism against apoptosis, which could be suppressed by ROS scavengers or autophagy inhibitors.
Conclusions:
- Blue light (BL) induces SS cell apoptosis via the ROS-mitochondrial signaling pathway.
- Autophagy is activated by ROS as a survival mechanism, but its inhibition potentiates BL's apoptotic effect.
- BL represents a promising therapeutic strategy for synovial sarcoma treatment.
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