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Quinone methide tripterine, celastrol, induces apoptosis in human myeloma cells via NF-κB pathway
Keiichi Tozawa1, Morihiko Sagawa, Masahiro Kizaki
1Division of Hematology, Department of Internal Medicine, Keio University School of Medicine, Tokyo 160-8582, Japan.
Abstract:
Multiple myeloma is still an incurable hematological malignancy despite the development of high-dose chemotherapy with stem cell transplantation. However, the therapeutic approach for multiple myeloma has progressed significantly in the last decade. Novel agents such as bortezomib, thalidomide and lenalidomide have been introduced in clinics as expanded treatment options and have improved the outcomes of patients with multiple myeloma. More recently, the development of novel agents with better effects and lower side-effects for the treatment of multiple myeloma has became necessary in the clinical setting. Celastrol is a quinone methide triterpene derived from the medicinal plant Tripterygium wilfordii, which has been used to treat chronic inflammatory and autoimmune diseases. It also has been reported that celastrol has potential as an anticancer agent; however, the effects of celastrol against myeloma have never been reported. It has been reported that the mechanisms of action occur via the NF-κB pathway. However, the effects of celastrol against multiple myeloma have never been reported. The recent clinical success of proteasome inhibitor bortezomib, which acts by inhibiting the NF-κB activity in patients with multiple myeloma led us to investigate the effects of celastrol on myeloma cells. Here we found for the first time that celastrol induces cell cycle arrest at the G1 phase followed by apoptosis in human myeloma cell line U266 cells. In addition, we showed that celastrol induces apoptosis of myeloma cells via activation of the caspase-3 and NF-κB pathways. These results suggest that celastrol would be an effective therapeutic agent in signal transduction therapy for the treatment of patients with multiple myeloma.
Insights
Celastrol, a natural compound, halts multiple myeloma cell growth by inducing cell cycle arrest and apoptosis. It activates caspase-3 and NF-κB pathways, showing potential as a novel cancer therapy.
Area of Science:
- Hematology
- Pharmacology
- Cancer Biology
Background:
- Multiple myeloma remains incurable despite advances like high-dose chemotherapy and novel agents.
- Existing treatments have improved outcomes, but new agents with better efficacy and fewer side effects are needed.
- Celastrol, a plant-derived compound, shows anticancer potential and acts via the NF-κB pathway.
Purpose of the Study:
- To investigate the effects of celastrol on multiple myeloma cells.
- To explore celastrol's mechanism of action in myeloma, particularly its impact on the NF-κB pathway.
- To evaluate celastrol as a potential therapeutic agent for multiple myeloma.
Main Methods:
- Treatment of human myeloma cell line U266 cells with celastrol.
- Analysis of cell cycle progression.
- Assessment of apoptosis induction via caspase-3 and NF-κB pathway activation.
Main Results:
- Celastrol induced cell cycle arrest at the G1 phase in U266 cells.
- Celastrol triggered apoptosis in myeloma cells.
- The compound activated both caspase-3 and NF-κB pathways.
Conclusions:
- Celastrol demonstrates significant anti-myeloma activity.
- Celastrol's mechanism involves cell cycle arrest, apoptosis induction, and modulation of caspase-3 and NF-κB.
- Celastrol shows promise as a novel therapeutic agent for multiple myeloma treatment.
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