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Updated: Dec 12, 2025

Single-Cell Calcium Imaging for Studying the Activation of Calcium Ion Channels
Published on: December 13, 2024
Capsaicin induces mitochondrial dysfunction and apoptosis in anaplastic thyroid carcinoma cells via TRPV1-mediated
Shichen Xu1, Xian Cheng1, Liying Wu2
1NHC Key Laboratory of Nuclear Medicine, Jiangsu Key Laboratory of Molecular Nuclear Medicine, Jiangsu Institute of Nuclear Medicine, Wuxi, Jiangsu 214063, China.
Abstract:
Anaplastic thyroid cancer (ATC) is a rare malignancy and has a poor prognosis due to its aggressive behavior and resistance to treatments. Calcium (Ca2+) serves as a ubiquitous cellular second messenger and influences several tumor behaviors. Therefore, Ca2+ modulation is expected to be a novel therapeutic target in cancers. However, whether Ca2+ modulation is effective in ATC therapy remains unknown. In this study, we reported that capsaicin (CAP), a transient receptor potential vanilloid type1 (TRPV1) agonist, inhibited the viability of anaplastic thyroid cancer cells. Capsaicin treatment triggered Ca2+ influx by TRPV1 activation, resulting in disequilibrium of intracellular calcium homeostasis. The rapidly increased cytosolic Ca2+ concentration was mirrored in the mitochondria and caused a severe condition of mitochondrial calcium overload in ATC cells. In addition, the disruption of mitochondrial calcium homeostasis caused by capsaicin led to mitochondrial dysfunction in ATC cells, as evidenced by the production of mitochondrial reactive oxygen species (ROS), depolarization of mitochondrial membrane potential (ΔΨm), and opening of mitochondrial permeability transition pore (mPTP). Next, the resulting release of cyt c into the cytosol triggered apoptosome assembly and subsequent caspase activation and apoptosis. It was worth noting that both TRPV1 antagonist (capsazepine) and calcium chelator (BAPTA) could attenuate aberrant Ca2+ homeostasis, mitochondrial dysfunction and apoptosis induced by capsaicin treatment. Thus, our study demonstrated that capsaicin induced mitochondrial calcium overload and apoptosis in ATC cells through a TRPV1-mediated pathway. The better understanding of the anti-cancer mechanisms of calcium modulation provides a potential target for the ATC therapy.
Insights
Capsaicin, a TRPV1 agonist, induces anaplastic thyroid cancer cell death by disrupting calcium homeostasis and triggering apoptosis. This calcium modulation offers a potential therapeutic strategy for this aggressive cancer.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Anaplastic thyroid cancer (ATC) is aggressive with poor prognosis.
- Calcium (Ca2+) signaling impacts tumor behavior, suggesting therapeutic potential.
- The role of Ca2+ modulation in ATC therapy is largely unknown.
Purpose of the Study:
- To investigate the effect of capsaicin (CAP), a TRPV1 agonist, on anaplastic thyroid cancer cells.
- To elucidate the underlying mechanisms of CAP-induced cell death.
- To explore Ca2+ modulation as a therapeutic target for ATC.
Main Methods:
- Treatment of ATC cells with capsaicin (CAP).
- Measurement of intracellular Ca2+ levels and mitochondrial Ca2+ overload.
- Assessment of mitochondrial dysfunction (ROS, membrane potential, mPTP).
- Evaluation of apoptosis induction (cytochrome c release, caspase activation).
- Use of TRPV1 antagonist (capsazepine) and calcium chelator (BAPTA) to validate pathways.
Main Results:
- CAP inhibited ATC cell viability.
- CAP triggered Ca2+ influx via TRPV1, causing cytosolic and mitochondrial Ca2+ overload.
- Disrupted mitochondrial calcium homeostasis led to dysfunction (increased ROS, decreased membrane potential, mPTP opening).
- CAP induced apoptosis through caspase activation.
- TRPV1 antagonist and calcium chelator attenuated CAP-induced effects.
Conclusions:
- Capsaicin induces apoptosis in anaplastic thyroid cancer cells via TRPV1-mediated mitochondrial calcium overload.
- Understanding these Ca2+ modulation mechanisms offers potential therapeutic targets for ATC.
- Targeting calcium homeostasis presents a novel strategy for treating aggressive thyroid cancers.
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