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October 19, 1998Circulation Research274 citationsOpen Access

Slow Conduction in Cardiac Tissue, I

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SRStephan RohrJKJan KučeraAKAndré G. Kléber

Key Result

Gap junctional uncoupling reduced conduction velocity to a substantially larger extent (≤1 cm/s) than did a reduction of excitability (10-15 cm/s) in cultured neonatal rat ventricular myocytes.

Structured PICO

P
Population
Cultured neonatal rat ventricular myocytes in narrow (70 to 80 microm) and wide (230 to 270 microm) linear strands
I
Intervention
Induction of slow conduction via graded elevation of [K+]o, tetrodotoxin, or gap junctional uncouplers (palmitoleic acid or 1-octanol)
C
Comparator
Control conditions
O
Outcome
Spread of activation at the cellular level (conduction velocity, activation patterns, action potential upstroke velocities)surrogate

Gap junctional uncoupling causes ultra-slow conduction and meandering activation wavefronts in cardiac tissue, potentially permitting reentrant excitation in minuscule areas.

Abstract

It was the aim of this study to characterize the spread of activation at the cellular level in cardiac tissue during conduction slowing, a key element of reentrant arrhythmias; therefore, activation patterns were assessed at high spatiotemporal resolution in narrow (70 to 80 microm) and wide (230 to 270 microm) linear strands of cultured neonatal rat ventricular myocytes, using multiple site optical recording of transmembrane voltage. Slow conduction was induced by graded elevation of K+o, by applying tetrodotoxin, or by exposing the preparations to the gap junctional uncouplers palmitoleic acid or 1-octanol. The main findings of the study are 4-fold: (1) gap junctional uncoupling reduced conduction velocity (range, 37 to 47 cm/s under control conditions) to a substantially larger extent before block (</=1 cm/s; ultra-slow conduction) than did a reduction of excitability (range, approximately 10 to 15 cm/s); (2) activation wavefronts during uncoupling meandered within the boundaries of the preparations, resulting in a pronounced additional slowing of conduction in wide cell strands; (3) at the cellular level, propagation during uncoupling-induced ultra-slow conduction was sustained by sequentially activated tissue patches, each of which consisted of a few cells being activated simultaneously; and (4) depending on the uncoupler used, maximal action potential upstroke velocities during ultra-slow conduction were either slightly (palmitoleic acid) or highly (1-octanol) depressed. Thus, depolarizing inward currents, the spatial pattern and degree of gap junctional coupling, and geometrical factors all contribute in a concerted manner to conduction slowing, which, at its extreme (0.25 cm/s measured over 1 mm), can reach values low enough to permit, theoretically, reentrant excitation to occur in minuscule areas of cardiac tissue (<<1 mm2).

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Cite This Study

Rohr et al. (1998) studied Cardiac conduction slowing / reentrant arrhythmias. Graded elevation of [K+]o, tetrodotoxin, palmitoleic acid, or 1-octanol vs. Control conditions was evaluated on Conduction velocity and activation patterns. Gap junctional uncoupling reduced conduction velocity to a substantially larger extent (≤1 cm/s) than did a reduction of excitability (10-15 cm/s) in cultured neonatal rat ventricular myocytes.

synapsesocial.com/papers/6a08bae9ef79633196e8ce56https://doi.org/10.1161/01.res.83.8.781
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  1. 1Uncoupling of cardiac cells by fatty acids: structure-activity relationships1991 · 96 citations
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  5. 5Influences of anisotropic tissue structure on reentrant circuits in the epicardial border zone of subacute canine infarcts.1988 · 521 citations