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Experimental Neonatal Status Epilepticus and the Development of Temporal Lobe Epilepsy with Unilateral Hippocampal Sclerosis

Overview
Journal Am J Pathol
Publisher Elsevier
Specialty Pathology
Date 2009 Dec 2
PMID 19948825
Citations 19
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Abstract

Hippocampal sclerosis is a common pathological finding in patients with temporal lobe epilepsy, including children, but a causal relationship to early-life seizures remains in question. Neonatal status epilepticus in animals can result in neuronal death within the hippocampus, although macroscopic features of hippocampal shrinkage are not evident at adulthood. Here, we examined electrophysiological and pathological consequences of focally evoked status epilepticus triggered by intra-amygdala microinjection of kainic acid in postnatal day 10 rat pups. Neonatal status epilepticus resulted in extensive neuronal death in the ipsilateral hippocampal CA1 and CA3 subfields and hilus, as assessed by DNA fragmentation and Fluoro-Jade B staining 72 hours later. The contralateral hippocampus was not significantly damaged. Histopathology at P55/P65 revealed unilateral hippocampal sclerosis (grade IV, modified Wyler/Watson scale) comprising >50% CA1 and CA3 neuron loss and astrogliosis. Additional features included hydrocephalus ex vacuo, modest dentate granule cell layer widening, and altered neuropeptide Y immunoreactivity indicative of synaptic rearrangement. Hippocampal atrophy was also evident on magnetic resonance imaging. Depth electrode recordings at adulthood detected spontaneous seizures that involved the ipsilateral hippocampus and amygdala. A significant positive correlation was found between hippocampal pathology grade and both frequency and duration of epileptic seizures at adulthood. The current study demonstrates that experimental neonatal status epilepticus can result in classical unilateral hippocampal sclerosis and temporal lobe epilepsy.

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References
1.
Nitecka L, Tremblay E, Charton G, Bouillot J, Berger M, Ben-Ari Y . Maturation of kainic acid seizure-brain damage syndrome in the rat. II. Histopathological sequelae. Neuroscience. 1984; 13(4):1073-94. DOI: 10.1016/0306-4522(84)90289-6. View

2.
Bocti C, Robitaille Y, Diadori P, Lortie A, Mercier C, Bouthillier A . The pathological basis of temporal lobe epilepsy in childhood. Neurology. 2003; 60(2):191-5. DOI: 10.1212/01.wnl.0000044055.73747.9f. View

3.
Bender R, Baram T . Epileptogenesis in the developing brain: what can we learn from animal models?. Epilepsia. 2007; 48 Suppl 5:2-6. PMC: 2735872. DOI: 10.1111/j.1528-1167.2007.01281.x. View

4.
Bouwmeester H, Gerrits M, Roozemond J, Snapper J, Ronken E, Kruse C . Neonatal basolateral amygdala lesions affect monoamine and cannabinoid brain systems in adult rats. Int J Neuropsychopharmacol. 2006; 10(6):727-39. DOI: 10.1017/S1461145706007346. View

5.
Wuerthele S, Lovell K, Jones M, Moore K . A histological study of kainic acid-induced lesions in the rat brain. Brain Res. 1978; 149(2):489-97. DOI: 10.1016/0006-8993(78)90491-2. View