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A single Markov-type kinetic model accounting for the macroscopic currents of all human voltage-gated sodium channel isoforms

Modelling ionic channels represents a fundamental step towards developing biologically detailed neuron models. Until recently, the voltage-gated ion channels have been mainly modelled according to the formalism introduced by the seminal works of Hodgkin and Huxley (HH). However, following the contin...

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Autores principales: Balbi, Pietro, Massobrio, Paolo, Hellgren Kotaleski, Jeanette
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5599066/
https://www.ncbi.nlm.nih.gov/pubmed/28863150
http://dx.doi.org/10.1371/journal.pcbi.1005737
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author Balbi, Pietro
Massobrio, Paolo
Hellgren Kotaleski, Jeanette
author_facet Balbi, Pietro
Massobrio, Paolo
Hellgren Kotaleski, Jeanette
author_sort Balbi, Pietro
collection PubMed
description Modelling ionic channels represents a fundamental step towards developing biologically detailed neuron models. Until recently, the voltage-gated ion channels have been mainly modelled according to the formalism introduced by the seminal works of Hodgkin and Huxley (HH). However, following the continuing achievements in the biophysical and molecular comprehension of these pore-forming transmembrane proteins, the HH formalism turned out to carry limitations and inconsistencies in reproducing the ion-channels electrophysiological behaviour. At the same time, Markov-type kinetic models have been increasingly proven to successfully replicate both the electrophysiological and biophysical features of different ion channels. However, in order to model even the finest non-conducting molecular conformational change, they are often equipped with a considerable number of states and related transitions, which make them computationally heavy and less suitable for implementation in conductance-based neurons and large networks of those. In this purely modelling study we develop a Markov-type kinetic model for all human voltage-gated sodium channels (VGSCs). The model framework is detailed, unifying (i.e., it accounts for all ion-channel isoforms) and computationally efficient (i.e. with a minimal set of states and transitions). The electrophysiological data to be modelled are gathered from previously published studies on whole-cell patch-clamp experiments in mammalian cell lines heterologously expressing the human VGSC subtypes (from Na(V)1.1 to Na(V)1.9). By adopting a minimum sequence of states, and using the same state diagram for all the distinct isoforms, the model ensures the lightest computational load when used in neuron models and neural networks of increasing complexity. The transitions between the states are described by original ordinary differential equations, which represent the rate of the state transitions as a function of voltage (i.e., membrane potential). The kinetic model, developed in the NEURON simulation environment, appears to be the simplest and most parsimonious way for a detailed phenomenological description of the human VGSCs electrophysiological behaviour.
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spelling pubmed-55990662017-09-28 A single Markov-type kinetic model accounting for the macroscopic currents of all human voltage-gated sodium channel isoforms Balbi, Pietro Massobrio, Paolo Hellgren Kotaleski, Jeanette PLoS Comput Biol Research Article Modelling ionic channels represents a fundamental step towards developing biologically detailed neuron models. Until recently, the voltage-gated ion channels have been mainly modelled according to the formalism introduced by the seminal works of Hodgkin and Huxley (HH). However, following the continuing achievements in the biophysical and molecular comprehension of these pore-forming transmembrane proteins, the HH formalism turned out to carry limitations and inconsistencies in reproducing the ion-channels electrophysiological behaviour. At the same time, Markov-type kinetic models have been increasingly proven to successfully replicate both the electrophysiological and biophysical features of different ion channels. However, in order to model even the finest non-conducting molecular conformational change, they are often equipped with a considerable number of states and related transitions, which make them computationally heavy and less suitable for implementation in conductance-based neurons and large networks of those. In this purely modelling study we develop a Markov-type kinetic model for all human voltage-gated sodium channels (VGSCs). The model framework is detailed, unifying (i.e., it accounts for all ion-channel isoforms) and computationally efficient (i.e. with a minimal set of states and transitions). The electrophysiological data to be modelled are gathered from previously published studies on whole-cell patch-clamp experiments in mammalian cell lines heterologously expressing the human VGSC subtypes (from Na(V)1.1 to Na(V)1.9). By adopting a minimum sequence of states, and using the same state diagram for all the distinct isoforms, the model ensures the lightest computational load when used in neuron models and neural networks of increasing complexity. The transitions between the states are described by original ordinary differential equations, which represent the rate of the state transitions as a function of voltage (i.e., membrane potential). The kinetic model, developed in the NEURON simulation environment, appears to be the simplest and most parsimonious way for a detailed phenomenological description of the human VGSCs electrophysiological behaviour. Public Library of Science 2017-09-01 /pmc/articles/PMC5599066/ /pubmed/28863150 http://dx.doi.org/10.1371/journal.pcbi.1005737 Text en © 2017 Balbi 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
Balbi, Pietro
Massobrio, Paolo
Hellgren Kotaleski, Jeanette
A single Markov-type kinetic model accounting for the macroscopic currents of all human voltage-gated sodium channel isoforms
title A single Markov-type kinetic model accounting for the macroscopic currents of all human voltage-gated sodium channel isoforms
title_full A single Markov-type kinetic model accounting for the macroscopic currents of all human voltage-gated sodium channel isoforms
title_fullStr A single Markov-type kinetic model accounting for the macroscopic currents of all human voltage-gated sodium channel isoforms
title_full_unstemmed A single Markov-type kinetic model accounting for the macroscopic currents of all human voltage-gated sodium channel isoforms
title_short A single Markov-type kinetic model accounting for the macroscopic currents of all human voltage-gated sodium channel isoforms
title_sort single markov-type kinetic model accounting for the macroscopic currents of all human voltage-gated sodium channel isoforms
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5599066/
https://www.ncbi.nlm.nih.gov/pubmed/28863150
http://dx.doi.org/10.1371/journal.pcbi.1005737
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