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Neuronal Spike Initiation Modulated by Extracellular Electric Fields

Based on a reduced two-compartment model, the dynamical and biophysical mechanism underlying the spike initiation of the neuron to extracellular electric fields is investigated in this paper. With stability and phase plane analysis, we first investigate in detail the dynamical properties of neuronal...

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Autores principales: Yi, Guo-Sheng, Wang, Jiang, Wei, Xi-Le, Tsang, Kai-Ming, Chan, Wai-Lok, Deng, Bin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4038635/
https://www.ncbi.nlm.nih.gov/pubmed/24873827
http://dx.doi.org/10.1371/journal.pone.0097481
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author Yi, Guo-Sheng
Wang, Jiang
Wei, Xi-Le
Tsang, Kai-Ming
Chan, Wai-Lok
Deng, Bin
author_facet Yi, Guo-Sheng
Wang, Jiang
Wei, Xi-Le
Tsang, Kai-Ming
Chan, Wai-Lok
Deng, Bin
author_sort Yi, Guo-Sheng
collection PubMed
description Based on a reduced two-compartment model, the dynamical and biophysical mechanism underlying the spike initiation of the neuron to extracellular electric fields is investigated in this paper. With stability and phase plane analysis, we first investigate in detail the dynamical properties of neuronal spike initiation induced by geometric parameter and internal coupling conductance. The geometric parameter is the ratio between soma area and total membrane area, which describes the proportion of area occupied by somatic chamber. It is found that varying it could qualitatively alter the bifurcation structures of equilibrium as well as neuronal phase portraits, which remain unchanged when varying internal coupling conductance. By analyzing the activating properties of somatic membrane currents at subthreshold potentials, we explore the relevant biophysical basis of spike initiation dynamics induced by these two parameters. It is observed that increasing geometric parameter could greatly decrease the intensity of the internal current flowing from soma to dendrite, which switches spike initiation dynamics from Hopf bifurcation to SNIC bifurcation; increasing internal coupling conductance could lead to the increase of this outward internal current, whereas the increasing range is so small that it could not qualitatively alter the spike initiation dynamics. These results highlight that neuronal geometric parameter is a crucial factor in determining the spike initiation dynamics to electric fields. The finding is useful to interpret the functional significance of neuronal biophysical properties in their encoding dynamics, which could contribute to uncovering how neuron encodes electric field signals.
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spelling pubmed-40386352014-06-05 Neuronal Spike Initiation Modulated by Extracellular Electric Fields Yi, Guo-Sheng Wang, Jiang Wei, Xi-Le Tsang, Kai-Ming Chan, Wai-Lok Deng, Bin PLoS One Research Article Based on a reduced two-compartment model, the dynamical and biophysical mechanism underlying the spike initiation of the neuron to extracellular electric fields is investigated in this paper. With stability and phase plane analysis, we first investigate in detail the dynamical properties of neuronal spike initiation induced by geometric parameter and internal coupling conductance. The geometric parameter is the ratio between soma area and total membrane area, which describes the proportion of area occupied by somatic chamber. It is found that varying it could qualitatively alter the bifurcation structures of equilibrium as well as neuronal phase portraits, which remain unchanged when varying internal coupling conductance. By analyzing the activating properties of somatic membrane currents at subthreshold potentials, we explore the relevant biophysical basis of spike initiation dynamics induced by these two parameters. It is observed that increasing geometric parameter could greatly decrease the intensity of the internal current flowing from soma to dendrite, which switches spike initiation dynamics from Hopf bifurcation to SNIC bifurcation; increasing internal coupling conductance could lead to the increase of this outward internal current, whereas the increasing range is so small that it could not qualitatively alter the spike initiation dynamics. These results highlight that neuronal geometric parameter is a crucial factor in determining the spike initiation dynamics to electric fields. The finding is useful to interpret the functional significance of neuronal biophysical properties in their encoding dynamics, which could contribute to uncovering how neuron encodes electric field signals. Public Library of Science 2014-05-29 /pmc/articles/PMC4038635/ /pubmed/24873827 http://dx.doi.org/10.1371/journal.pone.0097481 Text en © 2014 Yi 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Yi, Guo-Sheng
Wang, Jiang
Wei, Xi-Le
Tsang, Kai-Ming
Chan, Wai-Lok
Deng, Bin
Neuronal Spike Initiation Modulated by Extracellular Electric Fields
title Neuronal Spike Initiation Modulated by Extracellular Electric Fields
title_full Neuronal Spike Initiation Modulated by Extracellular Electric Fields
title_fullStr Neuronal Spike Initiation Modulated by Extracellular Electric Fields
title_full_unstemmed Neuronal Spike Initiation Modulated by Extracellular Electric Fields
title_short Neuronal Spike Initiation Modulated by Extracellular Electric Fields
title_sort neuronal spike initiation modulated by extracellular electric fields
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4038635/
https://www.ncbi.nlm.nih.gov/pubmed/24873827
http://dx.doi.org/10.1371/journal.pone.0097481
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