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Part-time cancers and role of melatonin in determining their metabolic phenotype
Russel J Reiter1, Ramaswamy Sharma1, Carmen Rodriguez2
1Department of Cell Systems and Anatomy, UT Health San Antonio, San Antonio, TX 78229, USA.
Abstract:
This brief review describes the association of the endogenous pineal melatonin rhythm with the metabolic flux of solid tumors, particularly breast cancer. It also summarizes new information on the potential mechanisms by which endogenously-produced or exogenously-administered melatonin impacts the metabolic phenotype of cancer cells. The evidence indicates that solid tumors may redirect their metabolic phenotype from the pathological Warburg-type metabolism during the day to the healthier mitochondrial oxidative phosphorylation on a nightly basis. Thus, they function as cancer cells only during the day and as healthier cells at night, that is, they are only part-time cancerous. This switch to oxidative phosphorylation at night causes cancer cells to exhibit a reduced tumor phenotype and less likely to rapidly proliferate or to become invasive or metastatic. Also discussed is the likelihood that some solid tumors are especially aggressive during the day and much less so at night due to the nocturnal rise in melatonin which determines their metabolic state. We further propose that when melatonin is used/tested in clinical trials, a specific treatment paradigm be used that is consistent with the temporal metabolic changes in tumor metabolism. Finally, it seems likely that the concurrent use of melatonin in combination with conventional chemotherapies also would improve cancer treatment outcomes.
Insights
Solid tumors exhibit a "part-time cancerous" behavior, switching from Warburg metabolism to healthier oxidative phosphorylation at night, driven by melatonin. This nocturnal shift reduces tumor aggressiveness and metastatic potential.
Area of Science:
- Oncology
- Metabolic Biology
- Chronobiology
Background:
- The circadian rhythm of melatonin influences various physiological processes.
- Cancer cells exhibit distinct metabolic phenotypes, including the Warburg effect.
- Solid tumors' metabolic activity may fluctuate over a 24-hour cycle.
Purpose of the Study:
- To review the association between endogenous melatonin rhythm and solid tumor metabolic flux.
- To summarize mechanisms of melatonin's impact on cancer cell metabolic phenotype.
- To explore the implications for cancer treatment strategies.
Main Methods:
- Literature review of studies on melatonin, tumor metabolism, and cancer.
- Analysis of evidence for temporal metabolic switching in solid tumors.
- Synthesis of data on melatonin's effects on cancer cell metabolism.
Main Results:
- Solid tumors may shift from Warburg metabolism (day) to oxidative phosphorylation (night).
- This nocturnal metabolic switch reduces tumor phenotype, proliferation, invasion, and metastasis.
- Melatonin's nocturnal rise is linked to decreased tumor aggressiveness.
Conclusions:
- Solid tumors exhibit a temporal metabolic plasticity, functioning as less aggressive cells at night.
- Melatonin plays a key role in mediating this nocturnal metabolic shift.
- Clinical trials should consider temporal treatment paradigms and combination therapies with melatonin for improved cancer outcomes.
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