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Updated: May 6, 2026

Investigating Long-term Synaptic Plasticity in Interlamellar Hippocampus CA1 by Electrophysiological Field Recording
Published on: August 11, 2019
The effects of early-life seizures on hippocampal dendrite development and later-life learning and memory
J R Casanova1, Masataka Nishimura2, John W Swann3
1The Department of Neuroscience, Baylor College of Medicine, USA; The Cain Foundation Laboratories, The Jan and Dan Duncan Neurological Research Institute, Texas Children's Hospital, USA.
Insights
Recurrent seizures in severe childhood epilepsy may cause intellectual disabilities by suppressing the growth of brain cell dendrites. Understanding these seizure effects is key to developing treatments for cognitive deficits.
Area of Science:
- Neuroscience
- Developmental Neuroscience
- Epilepsy Research
Background:
- Severe childhood epilepsy frequently co-occurs with intellectual developmental disabilities.
- The exact causes of cognitive deficits in epilepsy are multifactorial, varying by syndrome and individual.
- Recurring seizures are a common factor, suggesting they may contribute to intellectual impairments.
Purpose of the Study:
- To investigate the impact of recurrent seizures on neuronal structure and function.
- To explore the mechanisms underlying seizure-induced suppression of dendritic growth.
- To identify potential therapeutic targets for mitigating cognitive deficits in childhood epilepsy.
Main Methods:
- Review of laboratory studies examining spatial learning and memory in animal models with induced seizures.
- Analysis of in vivo and in vitro experiments on hippocampal pyramidal cell dendrite growth following seizure activity.
- Investigation of molecular pathways, including NMDA receptor dependence and CREB activation.
Main Results:
- Recurrent seizures in infancy impair spatial learning and memory in animal models.
- Seizures, both in vivo and electrographic, suppress hippocampal pyramidal cell dendrite growth.
- Growth suppression is linked to NMDA receptor activity and reduced CREB activation.
- Acute synchronized epileptiform activity can cause partial dendrite retraction, mediated by calcineurin.
Conclusions:
- Seizure-induced suppression of dendritic growth and synaptic changes likely contribute to cognitive disabilities in severe childhood epilepsy.
- NMDA receptor-dependent pathways and CREB signaling are implicated in seizure-induced growth suppression.
- Understanding the temporal dynamics and molecular underpinnings of dendrite growth suppression is crucial for therapeutic development.
Abstract:
Severe childhood epilepsy is commonly associated with intellectual developmental disabilities. The reasons for these cognitive deficits are likely multifactorial and will vary between epilepsy syndromes and even among children with the same syndrome. However, one factor these children have in common is the recurring seizures they experience - sometimes on a daily basis. Supporting the idea that the seizures themselves can contribute to intellectual disabilities are laboratory results demonstrating spatial learning and memory deficits in normal mice and rats that have experienced recurrent seizures in infancy. Studies reviewed here have shown that seizures in vivo and electrographic seizure activity in vitro both suppress the growth of hippocampal pyramidal cell dendrites. A simplification of dendritic arborization and a resulting decrease in the number and/or properties of the excitatory synapses on them could help explain the observed cognitive disabilities. There are a wide variety of candidate mechanisms that could be involved in seizure-induced growth suppression. The challenge is designing experiments that will help focus research on a limited number of potential molecular events. Thus far, results suggest that growth suppression is NMDA receptor-dependent and associated with a decrease in activation of the transcription factor CREB. The latter result is intriguing since CREB is known to play an important role in dendrite growth. Seizure-induced dendrite growth suppression may not occur as a single process in which pyramidal cells dendrites simply stop growing or grow slower compared to normal neurons. Instead, recent results suggest that after only a few hours of synchronized epileptiform activity in vitro dendrites appear to partially retract. This acute response is also NMDA receptor dependent and appears to be mediated by the Ca(+2)/calmodulin-dependent phosphatase, calcineurin. An understanding of the staging of seizure-induced growth suppression and the underlying molecular mechanisms will likely prove crucial for developing therapeutic strategies aimed at ameliorating the intellectual developmental disabilities associated with intractable childhood epilepsy.
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