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Low-level manganese exposure alters glutamate metabolism in GABAergic AF5 cells
Daniel R Crooks1, Nicholas Welch, Donald R Smith
1Department of Environmental Toxicology, University of California, Santa Cruz, CA 95064, USA.
Abstract:
Recent studies have suggested that the globus pallidus may be a particularly sensitive target of manganese (Mn), however, in vitro studies of the effects of Mn on GABAergic neurons have been restricted by the lack of a cell model expressing GABAergic properties. Here, we investigated the effects of low-level Mn treatment on cellular GABA and glutamate metabolism using the newly characterized AF5 rat neural-derived cell line, which displays GABAergic properties during culture in vitro. Intracellular GABA and glutamate levels were measured along with measurement of the release of GABA and glutamate into the culture medium, glutamine uptake from the culture medium, and the specific effects of Mn on the enzymes directly responsible for the synthesis and degradation of GABA, glutamate decarboxylase (GAD) and GABA transaminase (GABA-T). Our results demonstrate that Mn had no effect on the activities of GAD or GABA-T. Similarly, low-level Mn treatment of AF5 cultures had only a small effect on intracellular GABA levels (114% of control) and no effect on the release of GABA. In contrast, intracellular and extracellular glutamate levels were enhanced to 170 and 198% of control during Mn treatment, respectively, while extracellular glutamine decreased to 73% of controls. Together, these results suggest that glutamate homeostasis may be preferentially affected over GABA in AF5 cells during low-level Mn treatment, suggesting a novel mechanism by which Mn-induced excitotoxicity might arise.
Insights
Manganese (Mn) exposure preferentially impacts glutamate metabolism over GABA in neural cells. This study suggests a new pathway for manganese-induced excitotoxicity, affecting glutamate homeostasis.
Area of Science:
- Neuroscience
- Toxicology
- Cell Biology
Background:
- Globus pallidus is a potential target for manganese (Mn) toxicity.
- Lack of in vitro models for GABAergic neurons hinders Mn effect studies.
- AF5 rat neural cell line exhibits GABAergic properties.
Purpose of the Study:
- Investigate low-level Mn effects on GABA and glutamate metabolism in AF5 cells.
- Assess Mn impact on GABAergic and glutamatergic pathways.
- Explore potential mechanisms of Mn-induced excitotoxicity.
Main Methods:
- Utilized AF5 rat neural-derived cell line.
- Measured intracellular GABA and glutamate levels.
- Quantified GABA and glutamate release into culture medium.
- Assessed glutamine uptake and Mn effects on GAD and GABA-T enzyme activities.
Main Results:
- Mn did not affect GAD or GABA-T enzyme activity.
- Low-level Mn showed minimal impact on intracellular GABA levels and no effect on GABA release.
- Intracellular and extracellular glutamate levels increased significantly (170% and 198% of control).
- Extracellular glutamine levels decreased to 73% of control.
Conclusions:
- Low-level Mn exposure preferentially disrupts glutamate homeostasis over GABAergic function in AF5 cells.
- Findings suggest a novel mechanism for Mn-induced excitotoxicity via glutamate dysregulation.
- The AF5 cell line serves as a valuable model for studying Mn neurotoxicity.
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