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.

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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