Cargando…

Gap Junctional Communication via Connexin43 between Purkinje Fibers and Working Myocytes Explains the Epicardial Activation Pattern in the Postnatal Mouse Left Ventricle

The mammalian ventricular myocardium forms a functional syncytium due to flow of electrical current mediated in part by gap junctions localized within intercalated disks. The connexin (Cx) subunit of gap junctions have direct and indirect roles in conduction of electrical impulse from the cardiac pa...

Descripción completa

Detalles Bibliográficos
Autores principales: Olejnickova, Veronika, Kocka, Matej, Kvasilova, Alena, Kolesova, Hana, Dziacky, Adam, Gidor, Tom, Gidor, Lihi, Sankova, Barbora, Gregorovicova, Martina, Gourdie, Robert G., Sedmera, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7957598/
https://www.ncbi.nlm.nih.gov/pubmed/33804428
http://dx.doi.org/10.3390/ijms22052475
_version_ 1783664685506101248
author Olejnickova, Veronika
Kocka, Matej
Kvasilova, Alena
Kolesova, Hana
Dziacky, Adam
Gidor, Tom
Gidor, Lihi
Sankova, Barbora
Gregorovicova, Martina
Gourdie, Robert G.
Sedmera, David
author_facet Olejnickova, Veronika
Kocka, Matej
Kvasilova, Alena
Kolesova, Hana
Dziacky, Adam
Gidor, Tom
Gidor, Lihi
Sankova, Barbora
Gregorovicova, Martina
Gourdie, Robert G.
Sedmera, David
author_sort Olejnickova, Veronika
collection PubMed
description The mammalian ventricular myocardium forms a functional syncytium due to flow of electrical current mediated in part by gap junctions localized within intercalated disks. The connexin (Cx) subunit of gap junctions have direct and indirect roles in conduction of electrical impulse from the cardiac pacemaker via the cardiac conduction system (CCS) to working myocytes. Cx43 is the dominant isoform in these channels. We have studied the distribution of Cx43 junctions between the CCS and working myocytes in a transgenic mouse model, which had the His-Purkinje portion of the CCS labeled with green fluorescence protein. The highest number of such connections was found in a region about one-third of ventricular length above the apex, and it correlated with the peak proportion of Purkinje fibers (PFs) to the ventricular myocardium. At this location, on the septal surface of the left ventricle, the insulated left bundle branch split into the uninsulated network of PFs that continued to the free wall anteriorly and posteriorly. The second peak of PF abundance was present in the ventricular apex. Epicardial activation maps correspondingly placed the site of the first activation in the apical region, while some hearts presented more highly located breakthrough sites. Taken together, these results increase our understanding of the physiological pattern of ventricular activation and its morphological underpinning through detailed CCS anatomy and distribution of its gap junctional coupling to the working myocardium.
format Online
Article
Text
id pubmed-7957598
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-79575982021-03-16 Gap Junctional Communication via Connexin43 between Purkinje Fibers and Working Myocytes Explains the Epicardial Activation Pattern in the Postnatal Mouse Left Ventricle Olejnickova, Veronika Kocka, Matej Kvasilova, Alena Kolesova, Hana Dziacky, Adam Gidor, Tom Gidor, Lihi Sankova, Barbora Gregorovicova, Martina Gourdie, Robert G. Sedmera, David Int J Mol Sci Article The mammalian ventricular myocardium forms a functional syncytium due to flow of electrical current mediated in part by gap junctions localized within intercalated disks. The connexin (Cx) subunit of gap junctions have direct and indirect roles in conduction of electrical impulse from the cardiac pacemaker via the cardiac conduction system (CCS) to working myocytes. Cx43 is the dominant isoform in these channels. We have studied the distribution of Cx43 junctions between the CCS and working myocytes in a transgenic mouse model, which had the His-Purkinje portion of the CCS labeled with green fluorescence protein. The highest number of such connections was found in a region about one-third of ventricular length above the apex, and it correlated with the peak proportion of Purkinje fibers (PFs) to the ventricular myocardium. At this location, on the septal surface of the left ventricle, the insulated left bundle branch split into the uninsulated network of PFs that continued to the free wall anteriorly and posteriorly. The second peak of PF abundance was present in the ventricular apex. Epicardial activation maps correspondingly placed the site of the first activation in the apical region, while some hearts presented more highly located breakthrough sites. Taken together, these results increase our understanding of the physiological pattern of ventricular activation and its morphological underpinning through detailed CCS anatomy and distribution of its gap junctional coupling to the working myocardium. MDPI 2021-03-01 /pmc/articles/PMC7957598/ /pubmed/33804428 http://dx.doi.org/10.3390/ijms22052475 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Olejnickova, Veronika
Kocka, Matej
Kvasilova, Alena
Kolesova, Hana
Dziacky, Adam
Gidor, Tom
Gidor, Lihi
Sankova, Barbora
Gregorovicova, Martina
Gourdie, Robert G.
Sedmera, David
Gap Junctional Communication via Connexin43 between Purkinje Fibers and Working Myocytes Explains the Epicardial Activation Pattern in the Postnatal Mouse Left Ventricle
title Gap Junctional Communication via Connexin43 between Purkinje Fibers and Working Myocytes Explains the Epicardial Activation Pattern in the Postnatal Mouse Left Ventricle
title_full Gap Junctional Communication via Connexin43 between Purkinje Fibers and Working Myocytes Explains the Epicardial Activation Pattern in the Postnatal Mouse Left Ventricle
title_fullStr Gap Junctional Communication via Connexin43 between Purkinje Fibers and Working Myocytes Explains the Epicardial Activation Pattern in the Postnatal Mouse Left Ventricle
title_full_unstemmed Gap Junctional Communication via Connexin43 between Purkinje Fibers and Working Myocytes Explains the Epicardial Activation Pattern in the Postnatal Mouse Left Ventricle
title_short Gap Junctional Communication via Connexin43 between Purkinje Fibers and Working Myocytes Explains the Epicardial Activation Pattern in the Postnatal Mouse Left Ventricle
title_sort gap junctional communication via connexin43 between purkinje fibers and working myocytes explains the epicardial activation pattern in the postnatal mouse left ventricle
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7957598/
https://www.ncbi.nlm.nih.gov/pubmed/33804428
http://dx.doi.org/10.3390/ijms22052475
work_keys_str_mv AT olejnickovaveronika gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle
AT kockamatej gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle
AT kvasilovaalena gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle
AT kolesovahana gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle
AT dziackyadam gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle
AT gidortom gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle
AT gidorlihi gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle
AT sankovabarbora gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle
AT gregorovicovamartina gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle
AT gourdierobertg gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle
AT sedmeradavid gapjunctionalcommunicationviaconnexin43betweenpurkinjefibersandworkingmyocytesexplainstheepicardialactivationpatterninthepostnatalmouseleftventricle