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Effect of melatonin on cell growth, metabolic activity, and cell cycle distribution
M Natarajan1, R J Reiter, M L Meltz
1Department of Radiation Oncology, University of Texas Health Science Center, San Antonio, Texas 78229-3900, USA. natarajan@uthscsa.edu
Abstract:
We have recently demonstrated that the pineal secretory product melatonin inhibits the key transcriptional regulator nuclear factor-kappa B (NF-kappa B). As the activation of NF-kappa B is known to regulate the expression of cellular genes associated with cell cycle progression, cell growth, and differentiation, we investigated the effect of melatonin treatment on several cellular processes. These include cell viability, metabolic activity, and cell cycle phase distribution. Human embryonic kidney (293S) cells were treated with melatonin at concentrations of 0.02, 0.2, or 2 mM. When cell viability was measured 24, 48, and 72 hr after continuous exposure to melatonin using the trypan blue dye exclusion method, no significant cell death was observed. Even after exposure to 2 mM melatonin for 72 hr, cell viability remained at 98%. In contrast, another antioxidant compound, pyrrolidine dithiocarbomate (PDTC), at a 2 mM concentration reduced cell viability to 80.7+/-2.1% as early as 24 hr compared with untreated controls (P<0.05). When the metabolic activity was determined at 24, 48, and 72 hr using the colorimetric MTT assay, no significant changes in metabolic activity were observed. Even if the cells were treated with 10 mM melatonin for 72 hr, the metabolic activity was similar to that of the control cells. When cell cycle analysis was performed by flow cytometry, no marked difference in cell cycle distribution was observed. Melatonin at a concentration of 2 mM, however, did slightly alter the cell cycle (percentage of S phase cells) at 48 hr. This study revealed that when 293S cells are treated with concentrations of melatonin up to 2 mM, no significant alterations in three important cellular functions occurred. Exogenously added melatonin appeared to have a limited influence on the normal functioning of the cells even when the exposure continued for 72 hr.
Insights
Melatonin, a pineal hormone, does not significantly impact cell viability, metabolic activity, or cell cycle distribution in human embryonic kidney cells, even at high concentrations and prolonged exposure. This suggests melatonin has limited influence on normal cellular functions.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Melatonin, a pineal secretory product, is known to inhibit nuclear factor-kappa B (NF-kappa B).
- NF-kappa B activation regulates genes involved in cell cycle progression, growth, and differentiation.
- Understanding melatonin's cellular effects is crucial given its role in gene regulation.
Purpose of the Study:
- To investigate the effect of melatonin on key cellular processes.
- To assess melatonin's impact on cell viability, metabolic activity, and cell cycle distribution.
- To determine if melatonin influences normal cellular functions in human embryonic kidney cells.
Main Methods:
- Human embryonic kidney (293S) cells were treated with varying concentrations of melatonin (0.02, 0.2, 2 mM).
- Cell viability was assessed using the trypan blue dye exclusion method over 72 hours.
- Metabolic activity was measured using the MTT assay, and cell cycle distribution was analyzed by flow cytometry.
Main Results:
- Melatonin treatment up to 2 mM for 72 hours did not significantly reduce cell viability.
- Metabolic activity remained unchanged even with 10 mM melatonin exposure for 72 hours.
- Cell cycle distribution showed no marked differences, with only a slight alteration in S phase at 48 hours with 2 mM melatonin.
Conclusions:
- Exogenously administered melatonin, at concentrations up to 2 mM, does not significantly affect cell viability, metabolic activity, or cell cycle progression in 293S cells.
- Prolonged exposure (72 hours) to melatonin did not induce significant cytotoxicity or alter fundamental cellular functions.
- Melatonin appears to have a limited influence on the normal functioning of human embryonic kidney cells under the tested conditions.
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