Cargando…

Ionic Mechanisms of Propagated Repolarization in a One-Dimensional Strand of Human Ventricular Myocyte Model

Although repolarization has been suggested to propagate in cardiac tissue both theoretically and experimentally, it has been challenging to estimate how and to what extent the propagation of repolarization contributes to relaxation because repolarization only occurs in the course of membrane excitat...

Descripción completa

Detalles Bibliográficos
Autores principales: Himeno, Yukiko, Zhang, Yixin, Enomoto, Suzuka, Nomura, Hiroto, Yamamoto, Natsuki, Kiyokawa, Shotaro, Ujihara, Mirei, Muangkram, Yuttamol, Noma, Akinori, Amano, Akira
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10607672/
https://www.ncbi.nlm.nih.gov/pubmed/37895058
http://dx.doi.org/10.3390/ijms242015378
_version_ 1785127597030506496
author Himeno, Yukiko
Zhang, Yixin
Enomoto, Suzuka
Nomura, Hiroto
Yamamoto, Natsuki
Kiyokawa, Shotaro
Ujihara, Mirei
Muangkram, Yuttamol
Noma, Akinori
Amano, Akira
author_facet Himeno, Yukiko
Zhang, Yixin
Enomoto, Suzuka
Nomura, Hiroto
Yamamoto, Natsuki
Kiyokawa, Shotaro
Ujihara, Mirei
Muangkram, Yuttamol
Noma, Akinori
Amano, Akira
author_sort Himeno, Yukiko
collection PubMed
description Although repolarization has been suggested to propagate in cardiac tissue both theoretically and experimentally, it has been challenging to estimate how and to what extent the propagation of repolarization contributes to relaxation because repolarization only occurs in the course of membrane excitation in normal hearts. We established a mathematical model of a 1D strand of 600 myocytes stabilized at an equilibrium potential near the plateau potential level by introducing a sustained component of the late sodium current (I(NaL)). By applying a hyperpolarizing stimulus to a small part of the strand, we succeeded in inducing repolarization which propagated along the strand at a velocity of 1~2 cm/s. The ionic mechanisms responsible for repolarization at the myocyte level, i.e., the deactivation of both the I(NaL) and the L-type calcium current (I(CaL)), and the activation of the rapid component of delayed rectifier potassium current (I(Kr)) and the inward rectifier potassium channel (I(K1)), were found to be important for the propagation of repolarization in the myocyte strand. Using an analogy with progressive activation of the sodium current (I(Na)) in the propagation of excitation, regenerative activation of the predominant magnitude of I(K1) makes the myocytes at the wave front start repolarization in succession through the electrical coupling via gap junction channels.
format Online
Article
Text
id pubmed-10607672
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-106076722023-10-28 Ionic Mechanisms of Propagated Repolarization in a One-Dimensional Strand of Human Ventricular Myocyte Model Himeno, Yukiko Zhang, Yixin Enomoto, Suzuka Nomura, Hiroto Yamamoto, Natsuki Kiyokawa, Shotaro Ujihara, Mirei Muangkram, Yuttamol Noma, Akinori Amano, Akira Int J Mol Sci Article Although repolarization has been suggested to propagate in cardiac tissue both theoretically and experimentally, it has been challenging to estimate how and to what extent the propagation of repolarization contributes to relaxation because repolarization only occurs in the course of membrane excitation in normal hearts. We established a mathematical model of a 1D strand of 600 myocytes stabilized at an equilibrium potential near the plateau potential level by introducing a sustained component of the late sodium current (I(NaL)). By applying a hyperpolarizing stimulus to a small part of the strand, we succeeded in inducing repolarization which propagated along the strand at a velocity of 1~2 cm/s. The ionic mechanisms responsible for repolarization at the myocyte level, i.e., the deactivation of both the I(NaL) and the L-type calcium current (I(CaL)), and the activation of the rapid component of delayed rectifier potassium current (I(Kr)) and the inward rectifier potassium channel (I(K1)), were found to be important for the propagation of repolarization in the myocyte strand. Using an analogy with progressive activation of the sodium current (I(Na)) in the propagation of excitation, regenerative activation of the predominant magnitude of I(K1) makes the myocytes at the wave front start repolarization in succession through the electrical coupling via gap junction channels. MDPI 2023-10-19 /pmc/articles/PMC10607672/ /pubmed/37895058 http://dx.doi.org/10.3390/ijms242015378 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Himeno, Yukiko
Zhang, Yixin
Enomoto, Suzuka
Nomura, Hiroto
Yamamoto, Natsuki
Kiyokawa, Shotaro
Ujihara, Mirei
Muangkram, Yuttamol
Noma, Akinori
Amano, Akira
Ionic Mechanisms of Propagated Repolarization in a One-Dimensional Strand of Human Ventricular Myocyte Model
title Ionic Mechanisms of Propagated Repolarization in a One-Dimensional Strand of Human Ventricular Myocyte Model
title_full Ionic Mechanisms of Propagated Repolarization in a One-Dimensional Strand of Human Ventricular Myocyte Model
title_fullStr Ionic Mechanisms of Propagated Repolarization in a One-Dimensional Strand of Human Ventricular Myocyte Model
title_full_unstemmed Ionic Mechanisms of Propagated Repolarization in a One-Dimensional Strand of Human Ventricular Myocyte Model
title_short Ionic Mechanisms of Propagated Repolarization in a One-Dimensional Strand of Human Ventricular Myocyte Model
title_sort ionic mechanisms of propagated repolarization in a one-dimensional strand of human ventricular myocyte model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10607672/
https://www.ncbi.nlm.nih.gov/pubmed/37895058
http://dx.doi.org/10.3390/ijms242015378
work_keys_str_mv AT himenoyukiko ionicmechanismsofpropagatedrepolarizationinaonedimensionalstrandofhumanventricularmyocytemodel
AT zhangyixin ionicmechanismsofpropagatedrepolarizationinaonedimensionalstrandofhumanventricularmyocytemodel
AT enomotosuzuka ionicmechanismsofpropagatedrepolarizationinaonedimensionalstrandofhumanventricularmyocytemodel
AT nomurahiroto ionicmechanismsofpropagatedrepolarizationinaonedimensionalstrandofhumanventricularmyocytemodel
AT yamamotonatsuki ionicmechanismsofpropagatedrepolarizationinaonedimensionalstrandofhumanventricularmyocytemodel
AT kiyokawashotaro ionicmechanismsofpropagatedrepolarizationinaonedimensionalstrandofhumanventricularmyocytemodel
AT ujiharamirei ionicmechanismsofpropagatedrepolarizationinaonedimensionalstrandofhumanventricularmyocytemodel
AT muangkramyuttamol ionicmechanismsofpropagatedrepolarizationinaonedimensionalstrandofhumanventricularmyocytemodel
AT nomaakinori ionicmechanismsofpropagatedrepolarizationinaonedimensionalstrandofhumanventricularmyocytemodel
AT amanoakira ionicmechanismsofpropagatedrepolarizationinaonedimensionalstrandofhumanventricularmyocytemodel