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Updated: Jan 29, 2026

Differentiation of the SH-SY5Y Human Neuroblastoma Cell Line
Published on: February 17, 2016
Metabolomic Responses to Manganese Dose in SH-SY5Y Human Neuroblastoma Cells
Jolyn Fernandes1, Joshua D Chandler1, Ken H Liu1
1Division of Pulmonary, Allergy, Critical Care and Sleep Medicine, Department of Medicine, Emory University, Atlanta, Georgia.
Abstract:
Manganese (Mn)-associated neurotoxicity has been well recognized. However, Mn is also an essential nutrient to maintain physiological function. Our previous study of human neuroblastoma SH-SY5Y cells showed that Mn treatment comparable to physiological and toxicological concentrations in human brain resulted in different mitochondrial responses, yet cellular metabolic responses associated with such different outcomes remain uncharacterized. Herein, SH-SY5Y cells were examined for metabolic responses discriminated by physiological and toxicological levels of Mn using high-resolution metabolomics (HRM). Before performing HRM, we examined Mn dose (from 0 to100 μM) and time effects on cell death. Although we did not observe any immediate cell death after 5 h exposure to any of the Mn concentrations assessed (0-100 μM), cell loss was present after a 24-h recovery period in cultures treated with Mn ≥ 50 μM. Exposure to Mn for 5 h resulted in a wide range of changes in cellular metabolism including amino acids (AA), neurotransmitters, energy, and fatty acids metabolism. Adaptive responses at 10 μM showed increases in neuroprotective AA metabolites (creatine, phosphocreatine, phosphoserine). A 5-h exposure to 100 µM Mn, a time before any cell death occurred, resulted in decreases in energy and fatty acid metabolites (hexose-1,6 bisphosphate, acyl carnitines). The results show that adjustments in AA metabolism occur in response to Mn that does not cause cell death while disruption in energy and fatty acid metabolism occur in response to Mn that results in subsequent cell death. The present study establishes utility for metabolomics analyses to discriminate adaptive and toxic molecular responses in a human in vitro cellular model that could be exploited in evaluation of Mn toxicity.
Insights
Manganese (Mn) exposure impacts cell metabolism differently based on dose. Low Mn levels promote adaptive amino acid changes, while high levels disrupt energy and fatty acid metabolism, leading to cell death.
Area of Science:
- Neurobiology
- Metabolomics
- Toxicology
Background:
- Manganese (Mn) is essential but can be neurotoxic.
- Previous studies showed Mn affects mitochondrial responses in neuroblastoma cells.
- Cellular metabolic responses to varying Mn concentrations were uncharacterized.
Purpose of the Study:
- To characterize cellular metabolic responses to physiological and toxicological Mn levels.
- To discriminate adaptive versus toxic metabolic outcomes using high-resolution metabolomics (HRM).
- To evaluate Mn dose and time effects on cell death in SH-SY5Y cells.
Main Methods:
- Human neuroblastoma SH-SY5Y cells were treated with varying Mn concentrations (0-100 μM).
- Cell death was assessed after 5-hour exposure and a 24-hour recovery period.
- High-resolution metabolomics (HRM) was employed to analyze metabolic profiles.
Main Results:
- Cell loss occurred after 24-hour recovery from Mn exposure ≥ 50 μM.
- 5-hour Mn exposure altered amino acid (AA), neurotransmitter, energy, and fatty acid metabolism.
- Physiological Mn (10 μM) increased neuroprotective AA metabolites; toxic Mn (100 μM) decreased energy and fatty acid metabolites.
Conclusions:
- Metabolic adjustments in AA metabolism correlate with non-lethal Mn exposure.
- Disruptions in energy and fatty acid metabolism are linked to Mn-induced cell death.
- Metabolomics is valuable for distinguishing adaptive and toxic cellular responses to Mn.
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