Related Experiment Videos
Mechanisms of AMPA Neurotoxicity in Rat Brain Slices
Giti Garthwaite1, John Garthwaite
1Department of Physiology, University of Liverpool, Brownlow Hill, PO Box 147, Liverpool L69 3BX, UK.
Abstract:
The mechanisms underlying the neurodegenerative effects of the glutamate receptor agonist, AMPA (alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionate), were studied using brain slice preparations of young rat (8 - 9 days old) cerebellum and hippocampus. Rapid AMPA toxicity (exerted on some cerebellar interneurons) was inhibited by including the appropriate receptor blocker, CNQX (6-cyano-7-nitroquinoxaline-2,3-dione, 10 microM), in the exposing solution. The degeneration of other neurons, including Purkinje cells and hippocampal pyramidal neurons, persisted. It could, however, be largely prevented if CNQX was included for 1.5 h during the post-incubation period, suggesting that an enduring 'rebound' AMPA receptor activation was responsible for this delayed type of degeneration, not the exposure itself. In cerebellar slices, independent evidence for the occurrence, postexposure, of persisting AMPA receptor stimulation was obtained electrophysiologically. Omission of Ca2+ during the exposure period (and for 10 min beforehand) markedly reduced rapid AMPA toxicity but was ineffective in protecting most of the Purkinje cells. However, if the slices were previously starved of Ca2+ for 1 h, then most of these neurons survived, even if the ion was reinstated during the recovery period. Slow AMPA toxicity, which takes place during long (2 h) exposures, could be inhibited either by CNQX or by omission of Ca2+ (30 min preincubation). The results indicate that the rapid oedematous necrosis induced by AMPA, like that caused by N-methyl-d-aspartate and kainate, is likely to involve excessive influx of Ca2+. In contrast, the induction of the delayed mechanisms, as well as its 'expression' during the postincubation period, probably depends on intracellular Ca2+, rather than Ca2+ influx.
Insights
The glutamate agonist AMPA causes rapid neurotoxicity via calcium influx, while delayed neurodegeneration involves intracellular calcium. Blocking AMPA receptors during recovery prevents this delayed effect.
Area of Science:
- Neuroscience
- Neurobiology
- Cellular Neuroscience
Background:
- Glutamate receptor agonists like AMPA are implicated in neurodegeneration.
- Understanding AMPA's mechanisms is crucial for neuroprotection strategies.
Purpose of the Study:
- To elucidate the mechanisms of AMPA-induced neurodegeneration in rat cerebellar and hippocampal slices.
- To differentiate between rapid and delayed neurotoxic effects of AMPA.
Main Methods:
- Utilized young rat brain slice preparations (cerebellum and hippocampus).
- Employed AMPA (alpha-amino-3-hydroxy-5-methyl-4-isoxazolepropionate) exposure and CNQX (6-cyano-7-nitroquinoxaline-2,3-dione) as a receptor blocker.
- Manipulated calcium (Ca2+) levels during exposure and post-incubation periods.
Main Results:
- Rapid AMPA toxicity on interneurons was blocked by CNQX.
- Delayed degeneration of Purkinje and pyramidal neurons was prevented by post-exposure CNQX, suggesting rebound receptor activation.
- Calcium omission reduced rapid toxicity but not delayed effects; prior calcium starvation protected neurons.
- Slow AMPA toxicity was inhibited by CNQX or calcium omission.
Conclusions:
- Rapid AMPA neurotoxicity likely involves excessive extracellular calcium (Ca2+) influx.
- Delayed AMPA neurotoxicity mechanisms depend on intracellular calcium, not influx.
- Rebound AMPA receptor activation plays a role in delayed neurodegeneration.