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Local Electrical Impedance Mapping of the Atria: Conclusions on Substrate Properties and Confounding Factors

The treatment of atrial fibrillation and other cardiac arrhythmias as a major cause of cardiovascular hospitalization has remained a challenge predominantly for patients with severely remodeled substrate. Individualized ablation strategies are extremely important both for pulmonary vein isolation an...

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Autores principales: Unger, Laura Anna, Schicketanz, Leonie, Oesterlein, Tobias, Stritt, Michael, Haas, Annika, Martínez Antón, Carmen, Schmidt, Kerstin, Doessel, Olaf, Luik, Armin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8819079/
https://www.ncbi.nlm.nih.gov/pubmed/35140628
http://dx.doi.org/10.3389/fphys.2021.788885
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author Unger, Laura Anna
Schicketanz, Leonie
Oesterlein, Tobias
Stritt, Michael
Haas, Annika
Martínez Antón, Carmen
Schmidt, Kerstin
Doessel, Olaf
Luik, Armin
author_facet Unger, Laura Anna
Schicketanz, Leonie
Oesterlein, Tobias
Stritt, Michael
Haas, Annika
Martínez Antón, Carmen
Schmidt, Kerstin
Doessel, Olaf
Luik, Armin
author_sort Unger, Laura Anna
collection PubMed
description The treatment of atrial fibrillation and other cardiac arrhythmias as a major cause of cardiovascular hospitalization has remained a challenge predominantly for patients with severely remodeled substrate. Individualized ablation strategies are extremely important both for pulmonary vein isolation and subsequent ablations. Current approaches to identifying arrhythmogenic regions rely on electrogram-based features such as activation time and voltage. Novel technologies now enable clinical assessment of the local impedance as tissue property. Previous studies demonstrated its use for ablation monitoring and indicated its potential to differentiate healthy substrate, scar, and pathological tissue. This study investigates the potential of local electrical impedance-based substrate mapping of the atria for human in-vivo data. The presented pipeline for impedance mapping particularly contains options for dealing with undesirable effects originating from cardiac motion, catheter motion, or proximity to other intracardiac devices. Bloodpool impedance was automatically determined as a patient-specific reference. Full-chamber, left atrial impedance maps were drawn up from interpolating the measured impedances to the atrial endocardium. Finally, the origin and magnitude of oscillations of the raw impedance recording were probed into. The most dominant reason for exclusion of impedance samples was the loss of endocardial contact. With median elevations above the bloodpool impedance between 29 and 46 Ω, the impedance within the pulmonary veins significantly exceeded the remaining atrial walls presenting median elevations above the bloodpool impedance between 16 and 20 Ω. Previous ablation lesions were distinguished from their surroundings by a significant drop in local impedance while the corresponding regions did not differ for the control group. The raw impedance was found to oscillate with median amplitudes between 6 and 17 Ω depending on the patient. Oscillations were traced back to an interplay of atrial, ventricular, and respiratory motion. In summary, local impedance measurements demonstrated their capability to distinguish pathological atrial tissue from physiological substrate. Methods to limit the influence of confounding factors that still hinder impedance mapping were presented. Measurements at different frequencies or the combination of multiple electrodes could lead to further improvement. The presented examples indicate that electrogram- and impedance-based substrate mapping have the potential to complement each other toward better patient outcomes in future.
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spelling pubmed-88190792022-02-08 Local Electrical Impedance Mapping of the Atria: Conclusions on Substrate Properties and Confounding Factors Unger, Laura Anna Schicketanz, Leonie Oesterlein, Tobias Stritt, Michael Haas, Annika Martínez Antón, Carmen Schmidt, Kerstin Doessel, Olaf Luik, Armin Front Physiol Physiology The treatment of atrial fibrillation and other cardiac arrhythmias as a major cause of cardiovascular hospitalization has remained a challenge predominantly for patients with severely remodeled substrate. Individualized ablation strategies are extremely important both for pulmonary vein isolation and subsequent ablations. Current approaches to identifying arrhythmogenic regions rely on electrogram-based features such as activation time and voltage. Novel technologies now enable clinical assessment of the local impedance as tissue property. Previous studies demonstrated its use for ablation monitoring and indicated its potential to differentiate healthy substrate, scar, and pathological tissue. This study investigates the potential of local electrical impedance-based substrate mapping of the atria for human in-vivo data. The presented pipeline for impedance mapping particularly contains options for dealing with undesirable effects originating from cardiac motion, catheter motion, or proximity to other intracardiac devices. Bloodpool impedance was automatically determined as a patient-specific reference. Full-chamber, left atrial impedance maps were drawn up from interpolating the measured impedances to the atrial endocardium. Finally, the origin and magnitude of oscillations of the raw impedance recording were probed into. The most dominant reason for exclusion of impedance samples was the loss of endocardial contact. With median elevations above the bloodpool impedance between 29 and 46 Ω, the impedance within the pulmonary veins significantly exceeded the remaining atrial walls presenting median elevations above the bloodpool impedance between 16 and 20 Ω. Previous ablation lesions were distinguished from their surroundings by a significant drop in local impedance while the corresponding regions did not differ for the control group. The raw impedance was found to oscillate with median amplitudes between 6 and 17 Ω depending on the patient. Oscillations were traced back to an interplay of atrial, ventricular, and respiratory motion. In summary, local impedance measurements demonstrated their capability to distinguish pathological atrial tissue from physiological substrate. Methods to limit the influence of confounding factors that still hinder impedance mapping were presented. Measurements at different frequencies or the combination of multiple electrodes could lead to further improvement. The presented examples indicate that electrogram- and impedance-based substrate mapping have the potential to complement each other toward better patient outcomes in future. Frontiers Media S.A. 2022-01-24 /pmc/articles/PMC8819079/ /pubmed/35140628 http://dx.doi.org/10.3389/fphys.2021.788885 Text en Copyright © 2022 Unger, Schicketanz, Oesterlein, Stritt, Haas, Martínez Antón, Schmidt, Doessel and Luik. https://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
Unger, Laura Anna
Schicketanz, Leonie
Oesterlein, Tobias
Stritt, Michael
Haas, Annika
Martínez Antón, Carmen
Schmidt, Kerstin
Doessel, Olaf
Luik, Armin
Local Electrical Impedance Mapping of the Atria: Conclusions on Substrate Properties and Confounding Factors
title Local Electrical Impedance Mapping of the Atria: Conclusions on Substrate Properties and Confounding Factors
title_full Local Electrical Impedance Mapping of the Atria: Conclusions on Substrate Properties and Confounding Factors
title_fullStr Local Electrical Impedance Mapping of the Atria: Conclusions on Substrate Properties and Confounding Factors
title_full_unstemmed Local Electrical Impedance Mapping of the Atria: Conclusions on Substrate Properties and Confounding Factors
title_short Local Electrical Impedance Mapping of the Atria: Conclusions on Substrate Properties and Confounding Factors
title_sort local electrical impedance mapping of the atria: conclusions on substrate properties and confounding factors
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8819079/
https://www.ncbi.nlm.nih.gov/pubmed/35140628
http://dx.doi.org/10.3389/fphys.2021.788885
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