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Changes in neuronal dopamine homeostasis following 1-methyl-4-phenylpyridinium (MPP+) exposure
Se Joon Choi1, Anne Panhelainen2, Yvonne Schmitz1
1From the Departments of Neurology.
Abstract:
1-Methyl-4-phenylpyridinium (MPP(+)), the active metabolite of the neurotoxin 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine, selectively kills dopaminergic neurons in vivo and in vitro via a variety of toxic mechanisms, including mitochondrial dysfunction, generation of peroxynitrite, induction of apoptosis, and oxidative stress due to disruption of vesicular dopamine (DA) storage. To investigate the effects of acute MPP(+) exposure on neuronal DA homeostasis, we measured stimulation-dependent DA release and non-exocytotic DA efflux from mouse striatal slices and extracellular, intracellular, and cytosolic DA (DAcyt) levels in cultured mouse ventral midbrain neurons. In acute striatal slices, MPP(+) exposure gradually decreased stimulation-dependent DA release, followed by massive DA efflux that was dependent on MPP(+) concentration, temperature, and DA uptake transporter activity. Similarly, in mouse midbrain neuronal cultures, MPP(+) depleted vesicular DA storage accompanied by an elevation of cytosolic and extracellular DA levels. In neuronal cell bodies, increased DAcyt was not due to transmitter leakage from synaptic vesicles but rather to competitive MPP(+)-dependent inhibition of monoamine oxidase activity. Accordingly, monoamine oxidase blockers pargyline and l-deprenyl had no effect on DAcyt levels in MPP(+)-treated cells and produced only a moderate effect on the survival of dopaminergic neurons treated with the toxin. In contrast, depletion of intracellular DA by blocking neurotransmitter synthesis resulted in ∼30% reduction of MPP(+)-mediated toxicity, whereas overexpression of VMAT2 completely rescued dopaminergic neurons. These results demonstrate the utility of comprehensive analysis of DA metabolism using various electrochemical methods and reveal the complexity of the effects of MPP(+) on neuronal DA homeostasis and neurotoxicity.
Insights
1-Methyl-4-phenylpyridinium (MPP(+)) disrupts dopamine (DA) homeostasis and causes neurotoxicity by inhibiting monoamine oxidase and depleting vesicular DA storage, impacting dopaminergic neuron survival.
Area of Science:
- Neuroscience
- Neurotoxicology
- Biochemistry
Background:
- 1-Methyl-4-phenylpyridinium (MPP(+)) is a neurotoxin selectively targeting dopaminergic neurons.
- MPP(+) induces neuronal death through mitochondrial dysfunction, oxidative stress, and apoptosis.
- Disruption of vesicular dopamine (DA) storage is a key mechanism in MPP(+) neurotoxicity.
Purpose of the Study:
- To investigate the acute effects of MPP(+) on neuronal dopamine homeostasis.
- To elucidate the mechanisms underlying MPP(+) neurotoxicity in dopaminergic neurons.
Main Methods:
- Measurement of stimulation-dependent DA release and non-exocytotic DA efflux in mouse striatal slices.
- Quantification of extracellular, intracellular, and cytosolic DA (DAcyt) levels in cultured mouse ventral midbrain neurons.
- Assessment of MPP(+) effects with and without monoamine oxidase inhibitors and manipulation of DA synthesis and vesicular storage.
Main Results:
- MPP(+) exposure decreased stimulation-dependent DA release and induced massive DA efflux in striatal slices.
- In neuronal cultures, MPP(+) depleted vesicular DA, elevated DAcyt and extracellular DA, and inhibited monoamine oxidase.
- Depletion of intracellular DA reduced MPP(+) toxicity by ~30%, while VMAT2 overexpression conferred complete protection.
Conclusions:
- MPP(+) significantly alters DA homeostasis by inhibiting monoamine oxidase and disrupting vesicular DA storage.
- These changes in DA metabolism contribute substantially to MPP(+) neurotoxicity.
- Targeting DA storage mechanisms, such as VMAT2, offers a potential therapeutic strategy against MPP(+) neurotoxicity.
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