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Neonatal Seizure Models to Study Epileptogenesis
Yuka Kasahara1, Yuji Ikegaya1, Ryuta Koyama1
1Laboratory of Chemical Pharmacology, Graduate School of Pharmaceutical Sciences, The University of Tokyo, Tokyo, Japan.
Abstract:
Current therapeutic strategies for epilepsy include anti-epileptic drugs and surgical treatments that are mainly focused on the suppression of existing seizures rather than the occurrence of the first spontaneous seizure. These symptomatic treatments help a certain proportion of patients, but these strategies are not intended to clarify the cellular and molecular mechanisms underlying the primary process of epilepsy development, i.e., epileptogenesis. Epileptogenic changes include reorganization of neural and glial circuits, resulting in the formation of an epileptogenic focus. To achieve the goal of developing "anti-epileptogenic" drugs, we need to clarify the step-by-step mechanisms underlying epileptogenesis for patients whose seizures are not controllable with existing "anti-epileptic" drugs. Epileptogenesis has been studied using animal models of neonatal seizures because such models are useful for studying the latent period before the occurrence of spontaneous seizures and the lowering of the seizure threshold. Further, neonatal seizure models are generally easy to handle and can be applied for in vitro studies because cells in the neonatal brain are suitable for culture. Here, we review two animal models of neonatal seizures for studying epileptogenesis and discuss their features, specifically focusing on hypoxia-ischemia (HI)-induced seizures and febrile seizures (FSs). Studying these models will contribute to identifying the potential therapeutic targets and biomarkers of epileptogenesis.
Insights
Current epilepsy treatments manage seizures but don't prevent them. Studying neonatal seizure models, like hypoxia-ischemia and febrile seizures, helps understand epileptogenesis to develop preventative therapies.
Area of Science:
- Neuroscience
- Epilepsy Research
- Developmental Neurology
Background:
- Current epilepsy therapies primarily manage seizures, not the underlying development of epilepsy (epileptogenesis).
- Epileptogenesis involves neural and glial circuit reorganization, forming an epileptogenic focus.
- There is a need for treatments targeting epileptogenesis, especially for drug-resistant epilepsy.
Purpose of the Study:
- To review and discuss animal models of neonatal seizures for studying epileptogenesis.
- To highlight the utility of hypoxia-ischemia (HI) and febrile seizure (FS) models.
- To identify potential therapeutic targets and biomarkers for preventing epilepsy development.
Main Methods:
- Review of existing literature on neonatal seizure animal models.
- Focus on hypoxia-ischemia (HI)-induced seizures.
- Focus on febrile seizures (FS).
Main Results:
- Neonatal seizure models allow study of the latent period before spontaneous seizures.
- These models facilitate research into the lowering of seizure threshold.
- Neonatal brain cells are suitable for in vitro studies, aiding mechanistic investigations.
Conclusions:
- Hypoxia-ischemia and febrile seizure models are valuable tools for understanding epileptogenesis.
- Studying these models can reveal mechanisms crucial for developing anti-epileptogenic therapies.
- This research may lead to novel therapeutic targets and biomarkers for epilepsy prevention.
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