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Updated: Aug 23, 2025

Generation and On-Demand Initiation of Acute Ictal Activity in Rodent and Human Tissue
Published on: January 19, 2019
A Model for the Propagation of Seizure Activity in Normal Brain Tissue
Damien Depannemaecker1, Mallory Carlu2, Jules Bouté2
1French National Centre for Scientific Research (CNRS), Paris-Saclay Institute of Neuroscience (NeuroPSI), Paris-Saclay University, 91198 Gif sur Yvette, France damien.depannemaecker@univ-amu.fr alain.destexhe@cnrs.fr.
Abstract:
Epilepsies are characterized by paroxysmal electrophysiological events and seizures, which can propagate across the brain. One of the main unsolved questions in epilepsy is how epileptic activity can invade normal tissue and thus propagate across the brain. To investigate this question, we consider three computational models at the neural network scale to study the underlying dynamics of seizure propagation, understand which specific features play a role, and relate them to clinical or experimental observations. We consider both the internal connectivity structure between neurons and the input properties in our characterization. We show that a paroxysmal input is sometimes controlled by the network while in other instances, it can lead the network activity to itself produce paroxysmal activity, and thus will further propagate to efferent networks. We further show how the details of the network architecture are essential to determine this switch to a seizure-like regime. We investigated the nature of the instability involved and in particular found a central role for the inhibitory connectivity. We propose a probabilistic approach to the propagative/non-propagative scenarios, which may serve as a guide to control the seizure by using appropriate stimuli.
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