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Updated: May 31, 2026

Functional Neuroimaging Using Ultrasonic Blood-brain Barrier Disruption and Manganese-enhanced MRI
Published on: July 12, 2012
Altered striatal dopamine release following a sub-acute exposure to manganese
Madiha Khalid1, Rabab A Aoun, Tiffany A Mathews
1Department of Chemistry, Wayne State University, 5101 Cass Ave., Detroit, MI 48202, USA.
Abstract:
Certain metals that are necessary for regulating biological function at trace levels hold the potential to become neurotoxic when in excess. Specifically, chronic exposure to high levels of manganese leads to manganism, a neurological disorder that exhibits both motor and learning deficits similar to Parkinson's disease. Since Parkinson's disease symptomatology is primarily attributed to dopamine neurodegeneration in the striatum, dopamine system dysfunction has been implicated in the onset of manganism. In this study, dopamine system function in the dorsal striatum was evaluated in C57Bl/6 mice, 1, 7, and 21 days following repeated injections of manganese(II) chloride (50 mg/kg, subcutaneous) intermittently for 7 days. Tissue content analysis confirmed the presence of persistent accumulation of manganese in the striatum up to 21 days after cessation of treatment. In vitro fast scan cyclic voltammetry examined the effect of sub-acute manganese on electrically stimulated dopamine release and uptake in the striatum. While no difference was observed in uptake rates following manganese treatment, dopamine release was attenuated on days 7 and 21, compared to control levels. Basal levels of extracellular dopamine determined by the zero net flux microdialysis method were significantly lower in manganese-treated mice at 7 days post-treatment. On the other hand, potassium stimulated increases in extracellular dopamine were attenuated at all three time points. Together, these findings indicate that repeated manganese exposure has long-term effects on the regulation of exocytotic dopamine release in the striatum, which may be involved in the mechanism underlying manganese toxicity.
Insights
Chronic manganese exposure causes long-term dopamine release deficits in the mouse striatum, potentially contributing to manganism, a Parkinson
Area of Science:
- Neuroscience
- Toxicology
- Environmental Health
Background:
- Essential trace metals can become neurotoxic at elevated levels.
- Manganese excess causes manganism, a disorder with Parkinson's-like motor and learning deficits.
- Dopamine system dysfunction in the striatum is implicated in both Parkinson's disease and manganism.
Purpose of the Study:
- To investigate the long-term effects of manganese exposure on dopamine system function in the dorsal striatum.
- To assess manganese accumulation and its impact on dopamine release and uptake following repeated exposure.
Main Methods:
- Subcutaneous injections of manganese(II) chloride in C57Bl/6 mice.
- Tissue content analysis to confirm manganese accumulation.
- In vitro fast scan cyclic voltammetry to measure dopamine release and uptake.
- Zero net flux microdialysis to determine basal extracellular dopamine levels.
Main Results:
- Persistent manganese accumulation in the striatum up to 21 days post-treatment.
- Attenuated dopamine release on days 7 and 21 post-manganese exposure.
- Reduced basal extracellular dopamine levels at 7 days post-treatment.
- Impaired potassium-stimulated dopamine release at all measured time points.
Conclusions:
- Repeated manganese exposure induces long-lasting alterations in striatal dopamine release regulation.
- These dopamine release deficits may play a role in the neurotoxic mechanisms of manganism.
- Findings highlight the potential for chronic manganese exposure to disrupt dopaminergic pathways.

