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The Amplitude-Normalized Area of a Bipolar Electrogram as a Measure of Local Conduction Delay in the Heart

BACKGROUND: Re-entrant ventricular tachycardia may be non-inducible or haemodynamically compromising, requiring assessment of the electrophysiological properties of the myocardium during sinus rhythm (i.e., substrate mapping). Areas of heart tissue with slow conduction can act as a critical isthmus...

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Autores principales: Mendonca Costa, Caroline, Anderson, Grace C., Meijborg, Veronique M. F., O’Shea, Christopher, Shattock, Michael J., Kirchhof, Paulus, Coronel, Ruben, Niederer, Steven, Pavlovic, Davor, Dhanjal, Tarvinder, Winter, James
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7248250/
https://www.ncbi.nlm.nih.gov/pubmed/32508676
http://dx.doi.org/10.3389/fphys.2020.00465
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author Mendonca Costa, Caroline
Anderson, Grace C.
Meijborg, Veronique M. F.
O’Shea, Christopher
Shattock, Michael J.
Kirchhof, Paulus
Coronel, Ruben
Niederer, Steven
Pavlovic, Davor
Dhanjal, Tarvinder
Winter, James
author_facet Mendonca Costa, Caroline
Anderson, Grace C.
Meijborg, Veronique M. F.
O’Shea, Christopher
Shattock, Michael J.
Kirchhof, Paulus
Coronel, Ruben
Niederer, Steven
Pavlovic, Davor
Dhanjal, Tarvinder
Winter, James
author_sort Mendonca Costa, Caroline
collection PubMed
description BACKGROUND: Re-entrant ventricular tachycardia may be non-inducible or haemodynamically compromising, requiring assessment of the electrophysiological properties of the myocardium during sinus rhythm (i.e., substrate mapping). Areas of heart tissue with slow conduction can act as a critical isthmus for re-entrant electrical excitation and are a potential target for ablation therapy. AIM: To develop and validate a novel metric of local conduction delay in the heart, the amplitude-normalized electrogram area (norm_EA). METHODS: A computational model of a propagating mouse action potential was used to establish the impact of altering sodium channel conductance, intracellular conductivity, fibrosis density, and electrode size/orientation on bipolar electrogram morphology. Findings were then validated in experimental studies in mouse and guinea pig hearts instrumented for the recording of bipolar electrograms from a multipolar linear mapping catheter. norm_EA was calculated by integrating the absolute area of a bipolar electrogram divided by the electrogram amplitude. Electrogram metrics were correlated with the local conduction delay during sodium channel block, gap junction inhibition, and acute ischemia. RESULTS: In computational simulations, reducing sodium channel conductance and intracellular conductivity resulted in a decrease in signal amplitude and increase in norm_EA (reflecting a broadening of electrogram morphology). For larger electrodes (3 mm diameter/7.1 mm(2) area), the change in norm_EA was essentially linear with the change in local conduction delay. Experimental studies supported this finding, showing that the magnitude of change in norm_EA induced by flecainide (1–4 μM), carbenoxolone (10–50 μM), and low-flow ischemia (25% of initial flow rate) was linearly correlated with the local conduction delay in each condition (r(2) = 0.92). Qualitatively similar effects were observed in guinea pig hearts perfused with flecainide. Increasing fibrosis density in the computational model also resulted in a decrease in signal amplitude and increase in norm_EA. However, this remains to be validated using experimental/clinical data of chronic infarct. CONCLUSION: norm_EA is a quantitative measure of local conduction delay between the electrode pair that generates a bipolar electrogram, which may have utility in electrophysiological substrate mapping of non-inducible or haemodynamically compromising tachyarrhythmia.
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spelling pubmed-72482502020-06-05 The Amplitude-Normalized Area of a Bipolar Electrogram as a Measure of Local Conduction Delay in the Heart Mendonca Costa, Caroline Anderson, Grace C. Meijborg, Veronique M. F. O’Shea, Christopher Shattock, Michael J. Kirchhof, Paulus Coronel, Ruben Niederer, Steven Pavlovic, Davor Dhanjal, Tarvinder Winter, James Front Physiol Physiology BACKGROUND: Re-entrant ventricular tachycardia may be non-inducible or haemodynamically compromising, requiring assessment of the electrophysiological properties of the myocardium during sinus rhythm (i.e., substrate mapping). Areas of heart tissue with slow conduction can act as a critical isthmus for re-entrant electrical excitation and are a potential target for ablation therapy. AIM: To develop and validate a novel metric of local conduction delay in the heart, the amplitude-normalized electrogram area (norm_EA). METHODS: A computational model of a propagating mouse action potential was used to establish the impact of altering sodium channel conductance, intracellular conductivity, fibrosis density, and electrode size/orientation on bipolar electrogram morphology. Findings were then validated in experimental studies in mouse and guinea pig hearts instrumented for the recording of bipolar electrograms from a multipolar linear mapping catheter. norm_EA was calculated by integrating the absolute area of a bipolar electrogram divided by the electrogram amplitude. Electrogram metrics were correlated with the local conduction delay during sodium channel block, gap junction inhibition, and acute ischemia. RESULTS: In computational simulations, reducing sodium channel conductance and intracellular conductivity resulted in a decrease in signal amplitude and increase in norm_EA (reflecting a broadening of electrogram morphology). For larger electrodes (3 mm diameter/7.1 mm(2) area), the change in norm_EA was essentially linear with the change in local conduction delay. Experimental studies supported this finding, showing that the magnitude of change in norm_EA induced by flecainide (1–4 μM), carbenoxolone (10–50 μM), and low-flow ischemia (25% of initial flow rate) was linearly correlated with the local conduction delay in each condition (r(2) = 0.92). Qualitatively similar effects were observed in guinea pig hearts perfused with flecainide. Increasing fibrosis density in the computational model also resulted in a decrease in signal amplitude and increase in norm_EA. However, this remains to be validated using experimental/clinical data of chronic infarct. CONCLUSION: norm_EA is a quantitative measure of local conduction delay between the electrode pair that generates a bipolar electrogram, which may have utility in electrophysiological substrate mapping of non-inducible or haemodynamically compromising tachyarrhythmia. Frontiers Media S.A. 2020-05-19 /pmc/articles/PMC7248250/ /pubmed/32508676 http://dx.doi.org/10.3389/fphys.2020.00465 Text en Copyright © 2020 Mendonca Costa, Anderson, Meijborg, O’Shea, Shattock, Kirchhof, Coronel, Niederer, Pavlovic, Dhanjal and Winter. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Mendonca Costa, Caroline
Anderson, Grace C.
Meijborg, Veronique M. F.
O’Shea, Christopher
Shattock, Michael J.
Kirchhof, Paulus
Coronel, Ruben
Niederer, Steven
Pavlovic, Davor
Dhanjal, Tarvinder
Winter, James
The Amplitude-Normalized Area of a Bipolar Electrogram as a Measure of Local Conduction Delay in the Heart
title The Amplitude-Normalized Area of a Bipolar Electrogram as a Measure of Local Conduction Delay in the Heart
title_full The Amplitude-Normalized Area of a Bipolar Electrogram as a Measure of Local Conduction Delay in the Heart
title_fullStr The Amplitude-Normalized Area of a Bipolar Electrogram as a Measure of Local Conduction Delay in the Heart
title_full_unstemmed The Amplitude-Normalized Area of a Bipolar Electrogram as a Measure of Local Conduction Delay in the Heart
title_short The Amplitude-Normalized Area of a Bipolar Electrogram as a Measure of Local Conduction Delay in the Heart
title_sort amplitude-normalized area of a bipolar electrogram as a measure of local conduction delay in the heart
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7248250/
https://www.ncbi.nlm.nih.gov/pubmed/32508676
http://dx.doi.org/10.3389/fphys.2020.00465
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