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

Brain Research
|May 4, 2010
PubMed

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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