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Minimal model of interictal and ictal discharges “Epileptor-2”

Seizures occur in a recurrent manner with intermittent states of interictal and ictal discharges (IIDs and IDs). The transitions to and from IDs are determined by a set of processes, including synaptic interaction and ionic dynamics. Although mathematical models of separate types of epileptic discha...

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Autores principales: Chizhov, Anton V., Zefirov, Artyom V., Amakhin, Dmitry V., Smirnova, Elena Yu., Zaitsev, Aleksey V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6005638/
https://www.ncbi.nlm.nih.gov/pubmed/29851959
http://dx.doi.org/10.1371/journal.pcbi.1006186
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author Chizhov, Anton V.
Zefirov, Artyom V.
Amakhin, Dmitry V.
Smirnova, Elena Yu.
Zaitsev, Aleksey V.
author_facet Chizhov, Anton V.
Zefirov, Artyom V.
Amakhin, Dmitry V.
Smirnova, Elena Yu.
Zaitsev, Aleksey V.
author_sort Chizhov, Anton V.
collection PubMed
description Seizures occur in a recurrent manner with intermittent states of interictal and ictal discharges (IIDs and IDs). The transitions to and from IDs are determined by a set of processes, including synaptic interaction and ionic dynamics. Although mathematical models of separate types of epileptic discharges have been developed, modeling the transitions between states remains a challenge. A simple generic mathematical model of seizure dynamics (Epileptor) has recently been proposed by Jirsa et al. (2014); however, it is formulated in terms of abstract variables. In this paper, a minimal population-type model of IIDs and IDs is proposed that is as simple to use as the Epileptor, but the suggested model attributes physical meaning to the variables. The model is expressed in ordinary differential equations for extracellular potassium and intracellular sodium concentrations, membrane potential, and short-term synaptic depression variables. A quadratic integrate-and-fire model driven by the population input current is used to reproduce spike trains in a representative neuron. In simulations, potassium accumulation governs the transition from the silent state to the state of an ID. Each ID is composed of clustered IID-like events. The sodium accumulates during discharge and activates the sodium-potassium pump, which terminates the ID by restoring the potassium gradient and thus polarizing the neuronal membranes. The whole-cell and cell-attached recordings of a 4-AP-based in vitro model of epilepsy confirmed the primary model assumptions and predictions. The mathematical analysis revealed that the IID-like events are large-amplitude stochastic oscillations, which in the case of ID generation are controlled by slow oscillations of ionic concentrations. The IDs originate in the conditions of elevated potassium concentrations in a bath solution via a saddle-node-on-invariant-circle-like bifurcation for a non-smooth dynamical system. By providing a minimal biophysical description of ionic dynamics and network interactions, the model may serve as a hierarchical base from a simple to more complex modeling of seizures.
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spelling pubmed-60056382018-06-25 Minimal model of interictal and ictal discharges “Epileptor-2” Chizhov, Anton V. Zefirov, Artyom V. Amakhin, Dmitry V. Smirnova, Elena Yu. Zaitsev, Aleksey V. PLoS Comput Biol Research Article Seizures occur in a recurrent manner with intermittent states of interictal and ictal discharges (IIDs and IDs). The transitions to and from IDs are determined by a set of processes, including synaptic interaction and ionic dynamics. Although mathematical models of separate types of epileptic discharges have been developed, modeling the transitions between states remains a challenge. A simple generic mathematical model of seizure dynamics (Epileptor) has recently been proposed by Jirsa et al. (2014); however, it is formulated in terms of abstract variables. In this paper, a minimal population-type model of IIDs and IDs is proposed that is as simple to use as the Epileptor, but the suggested model attributes physical meaning to the variables. The model is expressed in ordinary differential equations for extracellular potassium and intracellular sodium concentrations, membrane potential, and short-term synaptic depression variables. A quadratic integrate-and-fire model driven by the population input current is used to reproduce spike trains in a representative neuron. In simulations, potassium accumulation governs the transition from the silent state to the state of an ID. Each ID is composed of clustered IID-like events. The sodium accumulates during discharge and activates the sodium-potassium pump, which terminates the ID by restoring the potassium gradient and thus polarizing the neuronal membranes. The whole-cell and cell-attached recordings of a 4-AP-based in vitro model of epilepsy confirmed the primary model assumptions and predictions. The mathematical analysis revealed that the IID-like events are large-amplitude stochastic oscillations, which in the case of ID generation are controlled by slow oscillations of ionic concentrations. The IDs originate in the conditions of elevated potassium concentrations in a bath solution via a saddle-node-on-invariant-circle-like bifurcation for a non-smooth dynamical system. By providing a minimal biophysical description of ionic dynamics and network interactions, the model may serve as a hierarchical base from a simple to more complex modeling of seizures. Public Library of Science 2018-05-31 /pmc/articles/PMC6005638/ /pubmed/29851959 http://dx.doi.org/10.1371/journal.pcbi.1006186 Text en © 2018 Chizhov et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Chizhov, Anton V.
Zefirov, Artyom V.
Amakhin, Dmitry V.
Smirnova, Elena Yu.
Zaitsev, Aleksey V.
Minimal model of interictal and ictal discharges “Epileptor-2”
title Minimal model of interictal and ictal discharges “Epileptor-2”
title_full Minimal model of interictal and ictal discharges “Epileptor-2”
title_fullStr Minimal model of interictal and ictal discharges “Epileptor-2”
title_full_unstemmed Minimal model of interictal and ictal discharges “Epileptor-2”
title_short Minimal model of interictal and ictal discharges “Epileptor-2”
title_sort minimal model of interictal and ictal discharges “epileptor-2”
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6005638/
https://www.ncbi.nlm.nih.gov/pubmed/29851959
http://dx.doi.org/10.1371/journal.pcbi.1006186
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