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Effects of methylmercury on neurotransmitter release from rat brain synaptosomes
D J Minnema1, G P Cooper, R D Greenland
1Department of Environmental Health, University of Cincinnati College of Medicine, Ohio 45267-0056.
Abstract:
Although the effects of methylmercury (MeHg) at the neuromuscular junction have been well characterized, similar studies employing CNS preparations and transmitters have been limited. We found that MeHg (0.5-5.0 microM) produced a concentration-dependent increase in the spontaneous release of [3H]dopamine. gamma-[3H]aminobutyric acid, and [3H]acetylcholine from synaptosomes isolated from rat brain striatum, cortex, and hippocampus, respectively. At these same concentrations MeHg did not attenuate calcium-dependent depolarization-evoked 3H-transmitter release. MeHg did not appear to induce calcium influx into the nerve terminal since the increase in release persists in the absence of extrasynaptosomal calcium. The increase in spontaneous transmitter release induced by MeHg persisted in the presence of low extrasynaptosomal sodium, suggesting that MeHg's effects on release are not mediated by either Na+, K+-ATPase inhibition or selective increases in membrane sodium permeability. MeHg produced only a very small increase in 45Ca efflux from synaptosomes preloaded with 45Ca, whereas these same MeHg concentrations produced large increases in 45Ca efflux from preloaded isolated mitochondria. MeHg did increase the efflux of [3H]deoxyglucose phosphate from synaptosomes. An increase in the efflux of [3H]deoxyglucose phosphate is believed to reflect an increase in neuronal membrane permeability. The quantitative and temporal aspects of the MeHg-induced [3H]-deoxyglucose phosphate efflux were similar to those observed for MeHg-induced neurotransmitter release. These data suggest that the increase in spontaneous transmitter release induced by MeHg is mainly the result of transmitter leakage that occurs subsequent to MeHg-induced increases in synaptosomal membrane permeability. However, these results cannot exclude possible effects of MeHg on intrasynaptosomal calcium homeostasis.
Insights
Methylmercury (MeHg) increases spontaneous neurotransmitter release in the central nervous system by raising synaptosomal membrane permeability. This effect appears to be independent of calcium influx and sodium transport mechanisms.
Area of Science:
- Neuroscience
- Toxicology
- Cell Biology
Background:
- Methylmercury (MeHg) neurotoxicity is well-documented at the neuromuscular junction.
- Limited research exists on MeHg's effects on central nervous system (CNS) neurotransmitter release.
Purpose of the Study:
- To investigate the impact of methylmercury on spontaneous neurotransmitter release from CNS synaptosomes.
- To elucidate the underlying mechanisms of MeHg-induced neurotransmitter release.
Main Methods:
- Isolated synaptosomes from rat brain regions (striatum, cortex, hippocampus) were used.
- Measurement of spontaneous and evoked release of [3H]dopamine, [3H]GABA, and [3H]acetylcholine.
- Assessment of calcium influx, 45Ca efflux, and [3H]deoxyglucose phosphate efflux.
Main Results:
- MeHg (0.5-5.0 microM) increased spontaneous release of dopamine, GABA, and acetylcholine in a concentration-dependent manner.
- MeHg did not inhibit calcium-dependent evoked release or induce significant calcium influx.
- MeHg increased synaptosomal membrane permeability, indicated by [3H]deoxyglucose phosphate efflux, correlating with neurotransmitter release.
Conclusions:
- MeHg-induced spontaneous neurotransmitter release is primarily due to increased synaptosomal membrane permeability.
- The mechanism involves transmitter leakage rather than direct effects on calcium influx or sodium transport.
- Further research is needed to rule out MeHg's effects on intrasynaptosomal calcium homeostasis.
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