Cargando…

Mechanistic insights from targeted molecular profiling of repolarization alternans in the intact human heart

AIMS: Action potential duration (APD) alternans is an established precursor or arrhythmia and sudden cardiac death. Important differences in fundamental electrophysiological properties relevant to arrhythmia exist between experimental models and the diseased in vivo human heart. To investigate mecha...

Descripción completa

Detalles Bibliográficos
Autores principales: Orini, Michele, Yanni, Joseph, Taggart, Peter, Hanson, Ben, Hayward, Martin, Smith, Andrew, Zhang, Henggui, Colman, Michael, Jones, Gareth, Jie, Xiao, Dobrzynski, Halina, Boyett, Mark R, Lambiase, Pier D
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6545501/
https://www.ncbi.nlm.nih.gov/pubmed/30753421
http://dx.doi.org/10.1093/europace/euz007
_version_ 1783423394865217536
author Orini, Michele
Yanni, Joseph
Taggart, Peter
Hanson, Ben
Hayward, Martin
Smith, Andrew
Zhang, Henggui
Colman, Michael
Jones, Gareth
Jie, Xiao
Dobrzynski, Halina
Boyett, Mark R
Lambiase, Pier D
author_facet Orini, Michele
Yanni, Joseph
Taggart, Peter
Hanson, Ben
Hayward, Martin
Smith, Andrew
Zhang, Henggui
Colman, Michael
Jones, Gareth
Jie, Xiao
Dobrzynski, Halina
Boyett, Mark R
Lambiase, Pier D
author_sort Orini, Michele
collection PubMed
description AIMS: Action potential duration (APD) alternans is an established precursor or arrhythmia and sudden cardiac death. Important differences in fundamental electrophysiological properties relevant to arrhythmia exist between experimental models and the diseased in vivo human heart. To investigate mechanisms of APD alternans using a novel approach combining intact heart and cellular cardiac electrophysiology in human in vivo. METHODS AND RESULTS: We developed a novel approach combining intact heart electrophysiological mapping during cardiac surgery with rapid on-site data analysis to guide myocardial biopsies for laboratory analysis, thereby linking repolarization dynamics observed at the organ level with underlying ion channel expression. Alternans-susceptible and alternans-resistant regions were identified by an incremental pacing protocol. Biopsies from these sites (n = 13) demonstrated greater RNA expression in Calsequestrin (CSQN) and Ryanodine (RyR) and ion channels underlying I(K1) and I(to) at alternans-susceptible sites. Electrical restitution properties (n = 7) showed no difference between alternans-susceptible and resistant sites, whereas spatial gradients of repolarization were greater in alternans-susceptible than in alternans-resistant sites (P = 0.001). The degree of histological fibrosis between alternans-susceptible and resistant sites was equivalent. Mathematical modelling of these changes indicated that both CSQN and RyR up-regulation are key determinants of APD alternans. CONCLUSION: Combined intact heart and cellular electrophysiology show that regions of myocardium in the in vivo human heart exhibiting APD alternans are associated with greater expression of CSQN and RyR and show no difference in restitution properties compared to non-alternans regions. In silico modelling identifies up-regulation and interaction of CSQN with RyR as a major mechanism underlying APD alternans.
format Online
Article
Text
id pubmed-6545501
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-65455012019-06-13 Mechanistic insights from targeted molecular profiling of repolarization alternans in the intact human heart Orini, Michele Yanni, Joseph Taggart, Peter Hanson, Ben Hayward, Martin Smith, Andrew Zhang, Henggui Colman, Michael Jones, Gareth Jie, Xiao Dobrzynski, Halina Boyett, Mark R Lambiase, Pier D Europace Basic Science AIMS: Action potential duration (APD) alternans is an established precursor or arrhythmia and sudden cardiac death. Important differences in fundamental electrophysiological properties relevant to arrhythmia exist between experimental models and the diseased in vivo human heart. To investigate mechanisms of APD alternans using a novel approach combining intact heart and cellular cardiac electrophysiology in human in vivo. METHODS AND RESULTS: We developed a novel approach combining intact heart electrophysiological mapping during cardiac surgery with rapid on-site data analysis to guide myocardial biopsies for laboratory analysis, thereby linking repolarization dynamics observed at the organ level with underlying ion channel expression. Alternans-susceptible and alternans-resistant regions were identified by an incremental pacing protocol. Biopsies from these sites (n = 13) demonstrated greater RNA expression in Calsequestrin (CSQN) and Ryanodine (RyR) and ion channels underlying I(K1) and I(to) at alternans-susceptible sites. Electrical restitution properties (n = 7) showed no difference between alternans-susceptible and resistant sites, whereas spatial gradients of repolarization were greater in alternans-susceptible than in alternans-resistant sites (P = 0.001). The degree of histological fibrosis between alternans-susceptible and resistant sites was equivalent. Mathematical modelling of these changes indicated that both CSQN and RyR up-regulation are key determinants of APD alternans. CONCLUSION: Combined intact heart and cellular electrophysiology show that regions of myocardium in the in vivo human heart exhibiting APD alternans are associated with greater expression of CSQN and RyR and show no difference in restitution properties compared to non-alternans regions. In silico modelling identifies up-regulation and interaction of CSQN with RyR as a major mechanism underlying APD alternans. Oxford University Press 2019-06 2019-02-08 /pmc/articles/PMC6545501/ /pubmed/30753421 http://dx.doi.org/10.1093/europace/euz007 Text en © The Author(s) 2019. Published by Oxford University Press on behalf of the European Society of Cardiology. 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 reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Basic Science
Orini, Michele
Yanni, Joseph
Taggart, Peter
Hanson, Ben
Hayward, Martin
Smith, Andrew
Zhang, Henggui
Colman, Michael
Jones, Gareth
Jie, Xiao
Dobrzynski, Halina
Boyett, Mark R
Lambiase, Pier D
Mechanistic insights from targeted molecular profiling of repolarization alternans in the intact human heart
title Mechanistic insights from targeted molecular profiling of repolarization alternans in the intact human heart
title_full Mechanistic insights from targeted molecular profiling of repolarization alternans in the intact human heart
title_fullStr Mechanistic insights from targeted molecular profiling of repolarization alternans in the intact human heart
title_full_unstemmed Mechanistic insights from targeted molecular profiling of repolarization alternans in the intact human heart
title_short Mechanistic insights from targeted molecular profiling of repolarization alternans in the intact human heart
title_sort mechanistic insights from targeted molecular profiling of repolarization alternans in the intact human heart
topic Basic Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6545501/
https://www.ncbi.nlm.nih.gov/pubmed/30753421
http://dx.doi.org/10.1093/europace/euz007
work_keys_str_mv AT orinimichele mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT yannijoseph mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT taggartpeter mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT hansonben mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT haywardmartin mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT smithandrew mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT zhanghenggui mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT colmanmichael mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT jonesgareth mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT jiexiao mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT dobrzynskihalina mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT boyettmarkr mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart
AT lambiasepierd mechanisticinsightsfromtargetedmolecularprofilingofrepolarizationalternansintheintacthumanheart