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Excitotoxic Stimulation of Brain Microslices as an In vitro Model of Stroke
Published on: February 4, 2014
NMDA and non-NMDA receptors stimulation causes differential oxidative stress in rat cortical slices
Basavaraju G Sanganahalli1, Preeti G Joshi, Nanda B Joshi
1Department of Biophysics, National Institute of Mental Health and Neuro Sciences, Bangalore 560029, India.
Abstract:
Glutamate receptor activated neuronal cell death is attributed to a massive influx of Ca(2+) and subsequent formation of reactive oxygen species (ROS) but the relative contribution of NMDA and non-NMDA sub-types of glutamate receptors in excitotoxicity is not known. In the present study, we have examined the role of NMDA and non-NMDA receptors in glutamate-induced neuronal injury in cortical slices from young (20+/-2 day) and adult (80+/-5 day) rats. Treatment of slices with glutamate receptor agonists NMDA, AMPA and KA elicited the formation of reactive oxygen species (ROS) and neuronal cell death. In young slices, NMDA receptor stimulation caused a higher ROS formation and neurotoxicity, but KA was more effective in producing ROS and cell death in adult slices. AMPA exhibited an intermediate effect on ROS formation and toxicity in both the age groups. A significant protection in glutamate mediated ROS formation and neurotoxicity was observed in presence of NMDA or/and non-NMDA receptors antagonists APV and NBQX, respectively. This further confirms the involvement of both NMDA and non-NMDA receptors in glutamate mediated neurotoxicity. In adult slices, we did not find positive correlation between ligand induced neurotoxicity and mitochondrial depolarization. Though, NMDA and KA stimulation produced differential effect on ROS formation and neurotoxicity in young and adult slices, the mitochondrial depolarization was higher and comparable on NMDA stimulation in both the age groups as compared to KA, suggesting that the mitochondrial depolarization may not be a good indicator for neurotoxicity. Our results demonstrate that both NMDA and non-NMDA sub-types of glutamate receptors are involved in glutamate mediated neurotoxicity but their relative contribution is highly dependent on the age of the animal.
Insights
The age of an animal influences the roles of N-methyl-D-aspartate (NMDA) and non-NMDA glutamate receptors in excitotoxicity. NMDA receptors are more involved in young rats, while non-NMDA receptors are more prominent in adult rats.
Area of Science:
- Neuroscience
- Cell Biology
- Toxicology
Background:
- Glutamate receptor activation causes neuronal cell death via calcium influx and reactive oxygen species (ROS).
- The specific roles of NMDA and non-NMDA glutamate receptor subtypes in excitotoxicity remain unclear.
- Understanding these roles is crucial for neuroprotection strategies.
Purpose of the Study:
- To investigate the differential contributions of NMDA and non-NMDA receptors to glutamate-induced neurotoxicity in young and adult rat cortical slices.
- To assess the relationship between receptor activation, ROS production, cell death, and mitochondrial depolarization across different age groups.
Main Methods:
- Cortical slices from young and adult rats were treated with glutamate receptor agonists (NMDA, AMPA, KA) and antagonists (APV, NBQX).
- Reactive oxygen species (ROS) formation, neuronal cell death, and mitochondrial depolarization were measured.
- Ligand-induced neurotoxicity and mitochondrial depolarization were correlated.
Main Results:
- NMDA receptor stimulation led to higher ROS and neurotoxicity in young slices; KA was more effective in adult slices.
- AMPA showed intermediate effects in both age groups.
- Antagonists APV and NBQX significantly protected against glutamate-induced ROS and neurotoxicity, confirming receptor involvement.
- Mitochondrial depolarization did not correlate with neurotoxicity in adult slices and showed differential responses to NMDA and KA.
Conclusions:
- Both NMDA and non-NMDA glutamate receptors contribute to excitotoxicity.
- The relative contribution of these receptor subtypes is significantly influenced by the animal's age.
- Mitochondrial depolarization may not be a reliable indicator of neurotoxicity in all contexts.

