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Human Primary Trophoblast Cell Culture Model to Study the Protective Effects of Melatonin Against Hypoxia/reoxygenation-induced Disruption
Published on: July 30, 2016
Mitochondrial function is controlled by melatonin and its metabolites in vitro in human melanoma cells
Bernadetta Bilska1, Fiona Schedel2, Anna Piotrowska3
1Department of Cell Biology and Imaging, Institute of Zoology and Biomedical Research, Jagiellonian University, Kraków, Poland.
Abstract:
Melanoma is a leading cause of cancer deaths worldwide. Although immunotherapy has revolutionized the treatment for some patients, resistance towards therapy and unwanted side effects remain a problem for numerous individuals. Broad anti-cancer activities of melatonin are recognized; however, additional investigations still need to be elucidated. Herein, using various human melanoma cell models, we explore in vitro the new insights into the regulation of melanoma by melatonin and its metabolites which possess, on the other side, high safety profiles and biological meaningful. In this study, using melanotic (MNT-1) and amelanotic (A375, G361, Sk-Mel-28) melanoma cell lines, the comparative oncostatic responses, the impact on melanin content (for melanotic MNT-1 melanoma cells) as well as the mitochondrial function controlled by melatonin, its precursor (serotonin), a kynuric (N1 -acetyl-N2 -formyl-5-methoxykynuramine, AFMK) and indolic pathway (6-hydroxymelatonin, 6(OH)MEL and 5-methoxytryptamine, 5-MT) metabolites were assessed. Namely, significant disturbances were observed in bioenergetics as follows: (i) uncoupling of oxidative phosphorylation (OXPHOS), (ii) attenuation of glycolysis, (iii) dissipation of mitochondrial transmembrane potential (mtΔΨ) accompanied by (iv) massive generation of reactive oxygen species (ROS), and (v) decrease of glucose uptake. Collectively, these results together with previously published reports provide a new biological potential and make an imperative to consider using melatonin or its metabolites for complementary future treatments of melanoma-affected patients; however, these associations should be additionally investigated in clinical setting.
Insights
Melatonin and its metabolites show potential in melanoma treatment by disrupting cancer cell energy production and increasing oxidative stress. Further clinical studies are needed to confirm these findings for patient benefit.
Area of Science:
- Oncology
- Biochemistry
- Pharmacology
Background:
- Melanoma is a significant global cause of cancer mortality.
- Current immunotherapies face challenges with treatment resistance and adverse effects.
- Melatonin exhibits broad anti-cancer properties, but its precise mechanisms in melanoma require further elucidation.
Purpose of the Study:
- To investigate the in vitro effects of melatonin and its metabolites on human melanoma cell lines.
- To explore the regulatory roles of melatonin and its metabolites in melanoma progression.
- To assess the potential of melatonin and its metabolites as complementary melanoma therapies.
Main Methods:
- Utilized melanotic (MNT-1) and amelanotic (A375, G361, Sk-Mel-28) human melanoma cell lines.
- Assessed oncostatic responses, melanin content, and mitochondrial function.
- Evaluated the impact of melatonin, serotonin, and metabolites AFMK, 6(OH)MEL, and 5-MT.
Main Results:
- Melatonin and its metabolites induced significant bioenergetic disturbances in melanoma cells.
- Observed uncoupling of oxidative phosphorylation (OXPHOS), attenuated glycolysis, and decreased glucose uptake.
- Detected dissipation of mitochondrial transmembrane potential (mtΔΨ) and massive reactive oxygen species (ROS) generation.
Conclusions:
- Melatonin and its metabolites demonstrate a novel biological potential for regulating melanoma.
- These compounds disrupt critical cellular bioenergetics, offering a new therapeutic avenue.
- Further clinical investigation is imperative to validate melatonin and its metabolites for melanoma treatment.
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