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Mechanically Induced Ectopy via Stretch-Activated Cation-Nonselective Channels Is Caused by Local Tissue Deformation and Results in Ventricular Fibrillation if Triggered on the Repolarization Wave Edge (Commotio Cordis)

BACKGROUND—: External chest impacts (commotio cordis) can cause mechanically induced premature ventricular excitation (PVE(M)) and, rarely, ventricular fibrillation (VF). Because block of stretch-sensitive ATP-inactivated potassium channels curtailed VF occurrence in a porcine model of commotio cord...

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Autores principales: Quinn, T. Alexander, Jin, Honghua, Lee, Peter, Kohl, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5555388/
https://www.ncbi.nlm.nih.gov/pubmed/28794084
http://dx.doi.org/10.1161/CIRCEP.116.004777
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author Quinn, T. Alexander
Jin, Honghua
Lee, Peter
Kohl, Peter
author_facet Quinn, T. Alexander
Jin, Honghua
Lee, Peter
Kohl, Peter
author_sort Quinn, T. Alexander
collection PubMed
description BACKGROUND—: External chest impacts (commotio cordis) can cause mechanically induced premature ventricular excitation (PVE(M)) and, rarely, ventricular fibrillation (VF). Because block of stretch-sensitive ATP-inactivated potassium channels curtailed VF occurrence in a porcine model of commotio cordis, VF has been suggested to arise from abnormal repolarization caused by stretch activation of potassium channels. Alternatively, VF could result from abnormal excitation by PVE(M), overlapping with normal repolarization-related electric heterogeneity. Here, we investigate mechanisms and determinants of PVE(M) induction and its potential role in commotio cordis–induced VF. METHODS AND RESULTS—: Subcontusional mechanical stimuli were applied to isolated rabbit hearts during optical voltage mapping, combined with pharmacological block of ATP-inactivated potassium or stretch-activated cation-nonselective channels. We demonstrate that local mechanical stimulation reliably triggers PVE(M) at the contact site, with inducibility predicted by local tissue indentation. PVE(M) induction is diminished by pharmacological block of stretch-activated cation-nonselective channels. In hearts where electrocardiogram T waves involve a well-defined repolarization edge traversing the epicardium, PVE(M) can reliably provoke VF if, and only if, the mechanical stimulation site overlaps the repolarization wave edge. In contrast, application of short-lived intraventricular pressure surges neither triggers PVE(M) nor changes repolarization. ATP-inactivated potassium channel block has no effect on PVE(M) inducibility per se, but shifts it to later time points by delaying repolarization and prolonging refractoriness. CONCLUSIONS—: Local mechanical tissue deformation determines PVE(M) induction via stretch-activation of cation-nonselective channels, with VF induction requiring PVE(M) overlap with the trailing edge of a normal repolarization wave. This defines a narrow, subject-specific vulnerable window for commotio cordis–induced VF that exists both in time and in space.
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spelling pubmed-55553882017-09-05 Mechanically Induced Ectopy via Stretch-Activated Cation-Nonselective Channels Is Caused by Local Tissue Deformation and Results in Ventricular Fibrillation if Triggered on the Repolarization Wave Edge (Commotio Cordis) Quinn, T. Alexander Jin, Honghua Lee, Peter Kohl, Peter Circ Arrhythm Electrophysiol Original Articles BACKGROUND—: External chest impacts (commotio cordis) can cause mechanically induced premature ventricular excitation (PVE(M)) and, rarely, ventricular fibrillation (VF). Because block of stretch-sensitive ATP-inactivated potassium channels curtailed VF occurrence in a porcine model of commotio cordis, VF has been suggested to arise from abnormal repolarization caused by stretch activation of potassium channels. Alternatively, VF could result from abnormal excitation by PVE(M), overlapping with normal repolarization-related electric heterogeneity. Here, we investigate mechanisms and determinants of PVE(M) induction and its potential role in commotio cordis–induced VF. METHODS AND RESULTS—: Subcontusional mechanical stimuli were applied to isolated rabbit hearts during optical voltage mapping, combined with pharmacological block of ATP-inactivated potassium or stretch-activated cation-nonselective channels. We demonstrate that local mechanical stimulation reliably triggers PVE(M) at the contact site, with inducibility predicted by local tissue indentation. PVE(M) induction is diminished by pharmacological block of stretch-activated cation-nonselective channels. In hearts where electrocardiogram T waves involve a well-defined repolarization edge traversing the epicardium, PVE(M) can reliably provoke VF if, and only if, the mechanical stimulation site overlaps the repolarization wave edge. In contrast, application of short-lived intraventricular pressure surges neither triggers PVE(M) nor changes repolarization. ATP-inactivated potassium channel block has no effect on PVE(M) inducibility per se, but shifts it to later time points by delaying repolarization and prolonging refractoriness. CONCLUSIONS—: Local mechanical tissue deformation determines PVE(M) induction via stretch-activation of cation-nonselective channels, with VF induction requiring PVE(M) overlap with the trailing edge of a normal repolarization wave. This defines a narrow, subject-specific vulnerable window for commotio cordis–induced VF that exists both in time and in space. Lippincott Williams & Wilkins 2017-08 2017-08-09 /pmc/articles/PMC5555388/ /pubmed/28794084 http://dx.doi.org/10.1161/CIRCEP.116.004777 Text en © 2017 The Authors. Circulation: Arrhythmia and Electrophysiology is published on behalf of the American Heart Association, Inc., by Wolters Kluwer Health, Inc. This is an open access article under the terms of the Creative Commons Attribution Non-Commercial-NoDerivs (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use, distribution, and reproduction in any medium, provided that the original work is properly cited, the use is noncommercial, and no modifications or adaptations are made.
spellingShingle Original Articles
Quinn, T. Alexander
Jin, Honghua
Lee, Peter
Kohl, Peter
Mechanically Induced Ectopy via Stretch-Activated Cation-Nonselective Channels Is Caused by Local Tissue Deformation and Results in Ventricular Fibrillation if Triggered on the Repolarization Wave Edge (Commotio Cordis)
title Mechanically Induced Ectopy via Stretch-Activated Cation-Nonselective Channels Is Caused by Local Tissue Deformation and Results in Ventricular Fibrillation if Triggered on the Repolarization Wave Edge (Commotio Cordis)
title_full Mechanically Induced Ectopy via Stretch-Activated Cation-Nonselective Channels Is Caused by Local Tissue Deformation and Results in Ventricular Fibrillation if Triggered on the Repolarization Wave Edge (Commotio Cordis)
title_fullStr Mechanically Induced Ectopy via Stretch-Activated Cation-Nonselective Channels Is Caused by Local Tissue Deformation and Results in Ventricular Fibrillation if Triggered on the Repolarization Wave Edge (Commotio Cordis)
title_full_unstemmed Mechanically Induced Ectopy via Stretch-Activated Cation-Nonselective Channels Is Caused by Local Tissue Deformation and Results in Ventricular Fibrillation if Triggered on the Repolarization Wave Edge (Commotio Cordis)
title_short Mechanically Induced Ectopy via Stretch-Activated Cation-Nonselective Channels Is Caused by Local Tissue Deformation and Results in Ventricular Fibrillation if Triggered on the Repolarization Wave Edge (Commotio Cordis)
title_sort mechanically induced ectopy via stretch-activated cation-nonselective channels is caused by local tissue deformation and results in ventricular fibrillation if triggered on the repolarization wave edge (commotio cordis)
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5555388/
https://www.ncbi.nlm.nih.gov/pubmed/28794084
http://dx.doi.org/10.1161/CIRCEP.116.004777
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