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Updated: Dec 17, 2025

Primary Culture of Mouse Dopaminergic Neurons
Published on: September 8, 2014
Mechanism of Manganese Dysregulation of Dopamine Neuronal Activity
Min Lin1, Luis M Colon-Perez2, Danielle O Sambo1
1Department of Neuroscience, University of Florida, Gainesville, Florida 32611.
Abstract:
Manganese exposure produces Parkinson's-like neurologic symptoms, suggesting a selective dysregulation of dopamine transmission. It is unknown, however, how manganese accumulates in dopaminergic brain regions or how it regulates the activity of dopamine neurons. Our in vivo studies in male C57BLJ mice suggest that manganese accumulates in dopamine neurons of the VTA and substantia nigra via nifedipine-sensitive Ca2+ channels. Manganese produces a Ca2+ channel-mediated current, which increases neurotransmitter release and rhythmic firing activity of dopamine neurons. These increases are prevented by blockade of Ca2+ channels and depend on downstream recruitment of Ca2+-activated potassium channels to the plasma membrane. These findings demonstrate the mechanism of manganese-induced dysfunction of dopamine neurons, and reveal a potential therapeutic target to attenuate manganese-induced impairment of dopamine transmission.SIGNIFICANCE STATEMENT Manganese is a trace element critical to many physiological processes. Overexposure to manganese is an environmental risk factor for neurologic disorders, such as a Parkinson's disease-like syndrome known as manganism. We found that manganese concentration-dependently increased the excitability of dopamine neurons, decreased the amplitude of action potentials, and narrowed action potential width. Blockade of Ca2+ channels prevented these effects as well as manganese accumulation in the mouse midbrain in vivo Our data provide a potential mechanism for manganese regulation of dopaminergic neurons.
Insights
Manganese exposure causes Parkinson's-like symptoms by accumulating in dopamine neurons via calcium channels. This study reveals how manganese disrupts dopamine neuron activity, offering potential therapeutic targets.
Area of Science:
- Neuroscience
- Environmental Health
- Toxicology
Background:
- Manganese overexposure causes Parkinson's disease-like symptoms (manganism).
- The mechanisms of manganese accumulation in dopaminergic neurons and its effects on neuronal activity remain unclear.
Purpose of the Study:
- To investigate how manganese accumulates in dopaminergic brain regions.
- To elucidate the mechanism by which manganese regulates dopamine neuron activity.
Main Methods:
- In vivo studies using male C57BLJ mice.
- Electrophysiological recordings to assess neuronal activity.
- Pharmacological blockade of calcium channels.
Main Results:
- Manganese accumulates in VTA and substantia nigra dopamine neurons via nifedipine-sensitive Ca2+ channels.
- Manganese increases neurotransmitter release and dopamine neuron firing through Ca2+ channel-mediated currents.
- Ca2+ channel blockade prevents manganese accumulation and its effects on neuronal excitability.
Conclusions:
- Manganese disrupts dopamine neuron function through Ca2+ channel-dependent mechanisms.
- This provides a potential therapeutic strategy to mitigate manganese-induced neurological impairment.
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