Reentrant waves in a ring of embryonic chick ventricular cells imaged with a Ca2+ sensitive dye.

According to the classic model initially formulated by Mines, reentrant cardiac arrhythmias may be associated with waves circulating in a ring geometry. This study was designed to study the dynamics of reentry in a ring geometry of cardiac tissue culture. Reentrant calcium waves in rings of cultured...

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Main Authors: González, H, Nagai, Y, Bub, G, Glass, L, Shrier, A
Format: Journal article
Language:English
Published: 2003
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author González, H
Nagai, Y
Bub, G
Glass, L
Shrier, A
author_facet González, H
Nagai, Y
Bub, G
Glass, L
Shrier, A
author_sort González, H
collection OXFORD
description According to the classic model initially formulated by Mines, reentrant cardiac arrhythmias may be associated with waves circulating in a ring geometry. This study was designed to study the dynamics of reentry in a ring geometry of cardiac tissue culture. Reentrant calcium waves in rings of cultured embryonic chick cardiac myocytes were imaged using a macroscope to monitor the fluorescence of intracellular Calcium Green-1 dye. The rings displayed a variety of stable rhythms including pacemaker activity and spontaneous reentry. Waves originating from a localized pacemaker could lead to reentry as a consequence of unidirectional block. In addition, more complex patterns were observed due to the interactions between reentrant and pacemaker rhythms. These rhythms included instances in which pacemakers accelerated the reentrant rhythm, and instances in which the excitation was blocked in the vicinity of pacemakers. During reentrant activity an appropriately timed electrical stimulus could induce resetting of activity or cause complete annihilation of the propagating waves. This experimental preparation reveals many spontaneously occuring complex rhythms. These complex rhythms are hypothesized to reflect interactions between spontaneous pacemakers, wave propagation, refractory period, and overdrive suppression. This preparation may serve as a useful model system to further investigate complex dynamics arising during reentrant rhythms in cardiac tissue.
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spelling oxford-uuid:005e1305-2fd2-4a78-a4b5-9fe403431fb02022-03-26T08:29:08ZReentrant waves in a ring of embryonic chick ventricular cells imaged with a Ca2+ sensitive dye.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:005e1305-2fd2-4a78-a4b5-9fe403431fb0EnglishSymplectic Elements at Oxford2003González, HNagai, YBub, GGlass, LShrier, AAccording to the classic model initially formulated by Mines, reentrant cardiac arrhythmias may be associated with waves circulating in a ring geometry. This study was designed to study the dynamics of reentry in a ring geometry of cardiac tissue culture. Reentrant calcium waves in rings of cultured embryonic chick cardiac myocytes were imaged using a macroscope to monitor the fluorescence of intracellular Calcium Green-1 dye. The rings displayed a variety of stable rhythms including pacemaker activity and spontaneous reentry. Waves originating from a localized pacemaker could lead to reentry as a consequence of unidirectional block. In addition, more complex patterns were observed due to the interactions between reentrant and pacemaker rhythms. These rhythms included instances in which pacemakers accelerated the reentrant rhythm, and instances in which the excitation was blocked in the vicinity of pacemakers. During reentrant activity an appropriately timed electrical stimulus could induce resetting of activity or cause complete annihilation of the propagating waves. This experimental preparation reveals many spontaneously occuring complex rhythms. These complex rhythms are hypothesized to reflect interactions between spontaneous pacemakers, wave propagation, refractory period, and overdrive suppression. This preparation may serve as a useful model system to further investigate complex dynamics arising during reentrant rhythms in cardiac tissue.
spellingShingle González, H
Nagai, Y
Bub, G
Glass, L
Shrier, A
Reentrant waves in a ring of embryonic chick ventricular cells imaged with a Ca2+ sensitive dye.
title Reentrant waves in a ring of embryonic chick ventricular cells imaged with a Ca2+ sensitive dye.
title_full Reentrant waves in a ring of embryonic chick ventricular cells imaged with a Ca2+ sensitive dye.
title_fullStr Reentrant waves in a ring of embryonic chick ventricular cells imaged with a Ca2+ sensitive dye.
title_full_unstemmed Reentrant waves in a ring of embryonic chick ventricular cells imaged with a Ca2+ sensitive dye.
title_short Reentrant waves in a ring of embryonic chick ventricular cells imaged with a Ca2+ sensitive dye.
title_sort reentrant waves in a ring of embryonic chick ventricular cells imaged with a ca2 sensitive dye
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