Melatonin drives apoptosis in head and neck cancer by increasing mitochondrial ROS generated via reverse electron
Javier Florido1,2,3, Laura Martinez-Ruiz1,2,3, César Rodriguez-Santana1,2
1Institute of Biotechnology, Biomedical Research Center, Health Sciences Technology Park, University of Granada, Granada, Spain.
Abstract:
The oncostatic effects of melatonin correlate with increased reactive oxygen species (ROS) levels, but how melatonin induces this ROS generation is unknown. In the present study, we aimed to elucidate the two seemingly opposing actions of melatonin regarding its relationship with free radicals. We analyzed the effects of melatonin on head and neck squamous cell carcinoma cell lines (Cal-27 and SCC-9), which were treated with 0.5 or 1 mM melatonin. We further examined the potential effects of melatonin to induce ROS and apoptosis in Cal-27 xenograft mice. Here we report that melatonin mediates apoptosis in head and neck cancer by driving mitochondrial reverse electron transport (RET) to induce ROS production. Melatonin-induced changes in tumoral metabolism led to increased mitochondrial activity, which, in turn, induced ROS-dependent mitochondrial uncoupling. Interestingly, mitochondrial complex inhibitors, including rotenone, abolished the ROS elevation indicating that melatonin increased ROS generation via RET. Melatonin also increased membrane potential and CoQ10 H2 /CoQ10 ratio to elevate mitochondrial ROS production, which are essential conditions for RET. We found that genetic manipulation of cancer cells with alternative oxidase, which transfers electrons from QH2 to oxygen, inhibited melatonin-induced ROS generation, and apoptosis. RET restored the melatonin-induced oncostatic effect, highlighting the importance of RET as the site of ROS production. These results illustrate that RET and ROS production are crucial factors in melatonin's effects in cancer cells and establish the dual effect of melatonin in protecting normal cells and inducing apoptosis in cancer cells.
Insights
Melatonin induces cancer cell death by boosting mitochondrial reverse electron transport (RET) to generate reactive oxygen species (ROS). This targeted ROS production is key to melatonin's oncostatic effects in head and neck cancer.
Area of Science:
- Biochemistry
- Cancer Biology
- Mitochondrial Physiology
Background:
- Melatonin's oncostatic effects are linked to increased reactive oxygen species (ROS), but the mechanism is unclear.
- Understanding melatonin's dual role in normal vs. cancer cells requires elucidating its free radical interactions.
Purpose of the Study:
- To investigate how melatonin induces ROS production in head and neck squamous cell carcinoma.
- To determine the role of mitochondrial reverse electron transport (RET) in melatonin-mediated apoptosis.
Main Methods:
- Treatment of head and neck cancer cell lines (Cal-27, SCC-9) with melatonin.
- Analysis of ROS generation, apoptosis, mitochondrial membrane potential, and CoQ ratio.
- Inhibition studies using mitochondrial complex inhibitors (rotenone) and genetic manipulation (alternative oxidase) in Cal-27 xenograft mice.
Main Results:
- Melatonin treatment increased mitochondrial activity and ROS production via RET in cancer cells.
- Mitochondrial complex inhibitors and alternative oxidase suppressed melatonin-induced ROS and apoptosis.
- Melatonin elevated membrane potential and CoQ ratio, creating conditions favorable for RET.
Conclusions:
- Melatonin mediates apoptosis in head and neck cancer by driving mitochondrial RET and subsequent ROS production.
- RET is the critical site for ROS generation, underpinning melatonin's oncostatic action.
- Melatonin exhibits a dual effect, protecting normal cells while inducing apoptosis in cancer cells via RET-mediated ROS.
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