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Behavioral Characterization of Pentylenetetrazole-induced Seizures: Moving Beyond the Racine Scale
Published on: July 8, 2025
Differential patterns of synaptotagmin7 mRNA expression in rats with kainate- and pilocarpine-induced seizures
Gordana Glavan1, Ronald Eugene See, Marko Živin
1Brain Research Laboratory, Institute of Pathophysiology, Medical Faculty, University of Ljubljana, Ljubljana, Slovenia.
Abstract:
Previous studies in rat models of neurodegenerative disorders have shown disregulation of striatal synaptotagmin7 mRNA. Here we explored the expression of synaptotagmin7 mRNA in the brains of rats with seizures triggered by the glutamatergic agonist kainate (10 mg/kg) or by the muscarinic agonist pilocarpine (30 mg/kg) in LiCl (3 mEq/kg) pre-treated (24 h) rats, in a time-course experiment (30 min-1 day). After kainate-induced seizures, synaptotagmin7 mRNA levels were transiently and uniformly increased throughout the dorsal and ventral striatum (accumbens) at 8 and 12 h, but not at 24 h, followed at 24 h by somewhat variable upregulation within different parts of the cerebral cortex, amigdala and thalamic nuclei, the hippocampus and the lateral septum. By contrast, after LiCl/pilocarpine-induced seizures, there was a more prolonged increase of striatal Synaptotagmin7 mRNA levels (at 8, 12 and 24 h), but only in the ventromedial striatum, while in some other of the aforementioned brain regions there was a decline to below the basal levels. After systemic post-treatment with muscarinic antagonist scopolamine in a dose of 2 mg/kg the seizures were either extinguished or attenuated. In scopolamine post-treated animals with extinguished seizures the striatal synaptotagmin7 mRNA levels (at 12 h after the onset of seizures) were not different from the levels in control animals without seizures, while in rats with attenuated seizures, the upregulation closely resembled kainate seizures-like pattern of striatal upregulation. In the dose of 1 mg/kg, scopolamine did not significantly affect the progression of pilocarpine-induced seizures or pilocarpine seizures-like pattern of striatal upregulation of synaptotagmin7 mRNA. In control experiments, equivalent doses of scopolamine per se did not affect the expression of synaptotagmin7 mRNA. We conclude that here described differential time course and pattern of synaptotagmin7 mRNA expression imply regional differences of pathophysiological brain activation and plasticity in these two models of seizures.
Insights
Synaptotagmin7 mRNA expression differs in rat brains following kainate or pilocarpine-induced seizures. Scopolamine treatment impacts this expression, suggesting distinct brain activation patterns in seizure models.
Area of Science:
- Neuroscience
- Molecular Biology
- Pathophysiology
Background:
- Striatal synaptotagmin7 mRNA dysregulation is observed in rat models of neurodegenerative disorders.
- Synaptotagmin7 is a protein involved in neurotransmitter release and synaptic vesicle trafficking.
Purpose of the Study:
- To investigate the expression of synaptotagmin7 mRNA in rat brains following kainate- or pilocarpine-induced seizures.
- To analyze the time-course and regional differences in synaptotagmin7 mRNA expression.
- To assess the effect of scopolamine, a muscarinic antagonist, on synaptotagmin7 mRNA expression during seizures.
Main Methods:
- Induction of seizures using kainate or pilocarpine in LiCl pre-treated rats.
- Time-course analysis of synaptotagmin7 mRNA expression (30 min-1 day) in various brain regions.
- Administration of scopolamine to evaluate its modulatory effects on seizures and gene expression.
Main Results:
- Kainate-induced seizures caused transient, uniform striatal synaptotagmin7 mRNA upregulation, followed by delayed cortical and limbic region changes.
- LiCl/pilocarpine-induced seizures led to prolonged striatal upregulation in specific regions, with some areas showing decreased expression.
- Scopolamine at 2 mg/kg extinguished or attenuated seizures, normalizing striatal synaptotagmin7 mRNA in extinguished cases and mimicking kainate patterns in attenuated cases.
Conclusions:
- Differential temporal and spatial patterns of synaptotagmin7 mRNA expression suggest distinct pathophysiological brain activation and plasticity in kainate and pilocarpine seizure models.
- Synaptotagmin7 mRNA expression is sensitive to the type of seizure induction and the effectiveness of muscarinic antagonist intervention.
- These findings highlight regional brain differences in response to seizures and potential therapeutic modulation.

