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Mathematical Modeling of Subthreshold Resonant Properties in Pyloric Dilator Neurons

Various types of neurons exhibit subthreshold resonance oscillation (preferred frequency response) to fluctuating sinusoidal input currents. This phenomenon is well known to influence the synaptic plasticity and frequency of neural network oscillation. This study evaluates the resonant properties of...

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Autores principales: Vazifehkhah Ghaffari, Babak, Kouhnavard, Mojgan, Aihara, Takeshi, Kitajima, Tatsuo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4415491/
https://www.ncbi.nlm.nih.gov/pubmed/25960999
http://dx.doi.org/10.1155/2015/135787
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author Vazifehkhah Ghaffari, Babak
Kouhnavard, Mojgan
Aihara, Takeshi
Kitajima, Tatsuo
author_facet Vazifehkhah Ghaffari, Babak
Kouhnavard, Mojgan
Aihara, Takeshi
Kitajima, Tatsuo
author_sort Vazifehkhah Ghaffari, Babak
collection PubMed
description Various types of neurons exhibit subthreshold resonance oscillation (preferred frequency response) to fluctuating sinusoidal input currents. This phenomenon is well known to influence the synaptic plasticity and frequency of neural network oscillation. This study evaluates the resonant properties of pacemaker pyloric dilator (PD) neurons in the central pattern generator network through mathematical modeling. From the pharmacological point of view, calcium currents cannot be blocked in PD neurons without removing the calcium-dependent potassium current. Thus, the effects of calcium (I (Ca)) and calcium-dependent potassium (I (KCa)) currents on resonant properties remain unclear. By taking advantage of Hodgkin-Huxley-type model of neuron and its equivalent RLC circuit, we examine the effects of changing resting membrane potential and those ionic currents on the resonance. Results show that changing the resting membrane potential influences the amplitude and frequency of resonance so that the strength of resonance (Q-value) increases by both depolarization and hyperpolarization of the resting membrane potential. Moreover, hyperpolarization-activated inward current (I (h)) and I (Ca) (in association with I (KCa)) are dominant factors on resonant properties at hyperpolarized and depolarized potentials, respectively. Through mathematical analysis, results indicate that I (h) and I (KCa) affect the resonant properties of PD neurons. However, I (Ca) only has an amplifying effect on the resonance amplitude of these neurons.
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spelling pubmed-44154912015-05-10 Mathematical Modeling of Subthreshold Resonant Properties in Pyloric Dilator Neurons Vazifehkhah Ghaffari, Babak Kouhnavard, Mojgan Aihara, Takeshi Kitajima, Tatsuo Biomed Res Int Research Article Various types of neurons exhibit subthreshold resonance oscillation (preferred frequency response) to fluctuating sinusoidal input currents. This phenomenon is well known to influence the synaptic plasticity and frequency of neural network oscillation. This study evaluates the resonant properties of pacemaker pyloric dilator (PD) neurons in the central pattern generator network through mathematical modeling. From the pharmacological point of view, calcium currents cannot be blocked in PD neurons without removing the calcium-dependent potassium current. Thus, the effects of calcium (I (Ca)) and calcium-dependent potassium (I (KCa)) currents on resonant properties remain unclear. By taking advantage of Hodgkin-Huxley-type model of neuron and its equivalent RLC circuit, we examine the effects of changing resting membrane potential and those ionic currents on the resonance. Results show that changing the resting membrane potential influences the amplitude and frequency of resonance so that the strength of resonance (Q-value) increases by both depolarization and hyperpolarization of the resting membrane potential. Moreover, hyperpolarization-activated inward current (I (h)) and I (Ca) (in association with I (KCa)) are dominant factors on resonant properties at hyperpolarized and depolarized potentials, respectively. Through mathematical analysis, results indicate that I (h) and I (KCa) affect the resonant properties of PD neurons. However, I (Ca) only has an amplifying effect on the resonance amplitude of these neurons. Hindawi Publishing Corporation 2015 2015-04-16 /pmc/articles/PMC4415491/ /pubmed/25960999 http://dx.doi.org/10.1155/2015/135787 Text en Copyright © 2015 Babak Vazifehkhah Ghaffari et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Vazifehkhah Ghaffari, Babak
Kouhnavard, Mojgan
Aihara, Takeshi
Kitajima, Tatsuo
Mathematical Modeling of Subthreshold Resonant Properties in Pyloric Dilator Neurons
title Mathematical Modeling of Subthreshold Resonant Properties in Pyloric Dilator Neurons
title_full Mathematical Modeling of Subthreshold Resonant Properties in Pyloric Dilator Neurons
title_fullStr Mathematical Modeling of Subthreshold Resonant Properties in Pyloric Dilator Neurons
title_full_unstemmed Mathematical Modeling of Subthreshold Resonant Properties in Pyloric Dilator Neurons
title_short Mathematical Modeling of Subthreshold Resonant Properties in Pyloric Dilator Neurons
title_sort mathematical modeling of subthreshold resonant properties in pyloric dilator neurons
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4415491/
https://www.ncbi.nlm.nih.gov/pubmed/25960999
http://dx.doi.org/10.1155/2015/135787
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