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Published on: May 3, 2017
Glutamate neurotoxicity in vitro: antagonist pharmacology and intracellular calcium concentrations
1Department of Biological Chemistry, Washington University School of Medicine, St. Louis, Missouri 63110.
Abstract:
There is now convincing evidence that excessive accumulation of the excitatory amino acid glutamate (GLU) in the extracellular space is toxic to central mammalian neurons. However, the role of different GLU receptors in producing this toxicity has not been adequately ascertained. There is also no adequate information about the correlation of free intracellular calcium concentration with eventual excitotoxic death. We have used cultured rat hippocampal neurons to address these issues. Approximately 75% of our neurons died after a 20-min GLU exposure. The potent kainate/quisqualate receptor antagonist 6-cyano-7-nitroquinoxaline-2,3-dione did not significantly ameliorate the GLU toxicity, while the selective noncompetitive N-methyl-D-aspartate (NMDA) antagonist methyl-10,11-dihydro-5-H-dibenzocyclohepten-5,10-imine (MK-801) blocked the GLU toxicity for periods of at least 2 hr. Interestingly, kainate was very toxic to the hippocampal neurons, but this toxicity was markedly attenuated by MK-801. These results suggest that the major toxicity of GLU is mediated by NMDA receptors and that under some conditions kainate toxicity reflects nonspecific opening of NMDA channels. The intracellular calcium concentrations in these neurons at the end of exposure to GLU and kainate (in the presence and absence of different antagonists) correlated poorly with eventual survival. Antagonists that limited the rise in calcium were still ineffective in preventing death. These results confirm earlier observations that stressed the importance of NMDA receptors in mediating GLU toxicity. However, they indicate that the relationship between toxicity and neuronal calcium concentration may be very complicated. An unexpected finding of these experiments was that MK-801, unlike competitive antagonists of GLU, elevated intracellular calcium.
Insights
Excessive glutamate is toxic to neurons, primarily through N-methyl-D-aspartate (NMDA) receptors. Intracellular calcium levels poorly predict excitotoxic neuron death, revealing a complex relationship.
Area of Science:
- Neuroscience
- Neurobiology
- Cellular Neuroscience
Background:
- Excitatory amino acid glutamate (GLU) accumulation is toxic to central mammalian neurons.
- The specific roles of GLU receptors and intracellular calcium in excitotoxicity remain unclear.
Purpose of the Study:
- To investigate the contribution of different GLU receptors to excitotoxicity.
- To examine the correlation between intracellular calcium concentration and neuronal death.
Main Methods:
- Cultured rat hippocampal neurons were exposed to GLU and kainate.
- The effects of NMDA and kainate/quisqualate receptor antagonists (MK-801 and CNQX) on GLU toxicity were assessed.
- Intracellular calcium concentrations were measured.
Main Results:
- GLU exposure caused significant neuronal death (75%).
- The NMDA receptor antagonist MK-801 effectively blocked GLU toxicity, while CNQX did not.
- Kainate toxicity was also reduced by MK-801, suggesting NMDA receptor involvement.
- Intracellular calcium levels did not consistently correlate with neuronal survival.
Conclusions:
- NMDA receptors are the primary mediators of GLU excitotoxicity.
- Kainate toxicity may involve non-specific NMDA receptor activation.
- The relationship between intracellular calcium and excitotoxic neuronal death is complex and not fully understood.

