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Memantine exacerbates myoclonic jerks in a rat model of posthypoxic myoclonus
Kwok-Keung Tai1, Daniel D Truong
1The Parkinson's and Movement Disorder Research Laboratory, Long Beach Memorial Medical Center, 2801 Atlantic Ave, Long Beach, CA 90801, USA. kktai@yahoo.com
Abstract:
The mechanism of cerebral hypoxia-induced myoclonic jerks is not known. Some studies have suggested that glutaminergic NMDA receptor activation in the inferior olive resulting in excitotoxic neuronal injury in the cerebellum is the underlying cause of posthypoxic myoclonus. To test this hypothesis, the effect of memantine, an NMDA receptor antagonist, on the intensity of myoclonic jerks and the extent of cerebral ischemia-induced neurodegeneration in the cerebellum were evaluated in a rat model of posthypoxic myoclonus. The myoclonus scores for the posthypoxic rats treated with memantine were significantly higher than those treated with saline. The myoclonic scores for the posthypoxic rats injected with 100mg/kg memantine are higher than those posthypoxic rats injected with 30 mg/kg memantine. In contrast, the number of Fluoro-Jade B positive degenerating neurons in the Purkinje cell layer of the cerebellum did not differ significantly between the memantine-treated and the saline-treated posthypoxic rats. This pattern of results suggests that glutaminergic NMDA receptor activation in the cerebellum does not play a significant role in the generation of myoclonus in a rat model of posthypoxic myoclonus. Further, these results also suggest that NMDA receptor antagonists would exacerbate posthypoxic myoclonus in this animal model.
Insights
The mechanism of cerebral hypoxia-induced myoclonic jerks remains unclear. NMDA receptor antagonists like memantine worsened myoclonus in rats, suggesting these receptors are not key to the condition.
Area of Science:
- Neuroscience
- Neurology
Background:
- The underlying mechanisms of cerebral hypoxia-induced myoclonic jerks are not fully understood.
- Previous research suggests a role for glutamatergic NMDA receptor activation in the inferior olive, leading to excitotoxic cerebellar neuronal injury.
Purpose of the Study:
- To investigate the role of NMDA receptor activation in posthypoxic myoclonus.
- To evaluate the effect of memantine, an NMDA receptor antagonist, on myoclonic jerk intensity and cerebellar neurodegeneration in a rat model.
Main Methods:
- A rat model of posthypoxic myoclonus was utilized.
- Rats were treated with varying doses of memantine or saline.
- Myoclonic jerk intensity was scored, and cerebellar neurodegeneration was assessed using Fluoro-Jade B staining.
Main Results:
- Memantine treatment significantly increased myoclonus scores compared to saline.
- Higher doses of memantine resulted in more severe myoclonus.
- No significant difference in cerebellar neuronal degeneration was observed between memantine and saline groups.
Conclusions:
- Glutamatergic NMDA receptor activation in the cerebellum does not appear to be a major factor in generating posthypoxic myoclonus.
- NMDA receptor antagonists may exacerbate posthypoxic myoclonus in this animal model.
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