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April 1, 1988Circulation Research336 citations

Influence of the passive anisotropic properties on directional differences in propagation following modification of the sodium conductance in human atrial muscle. A model of reentry based on anisotropic discontinuous propagation.

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MSMadison S. SpachPDPaul C. DolberJHJ. Francis Heidlage

Key Result

Conditions obliterating side-to-side electrical coupling in older human atrial bundles allowed reentry to occur within very small areas (1-2 mm) due to anisotropic discontinuous propagation.

Structured PICO

P
Population
Human atrial muscle (young, uniform anisotropic atrial bundles and older, nonuniform anisotropic bundles)
I
Intervention
Modification of sodium conductance by premature action potentials and sodium channel-blocking drugs (quinidine, acetylcholine)
C
Comparator
Young uniform anisotropic bundles vs older nonuniform anisotropic bundles; baseline vs drug administration
O
Outcome
Propagation response (conduction block, dissociated zigzag longitudinal conduction, reentry)surrogate

Aging and chronic hypertrophy, which obliterate side-to-side electrical coupling, provide a primary mechanism for micro-reentry due to anisotropic discontinuous propagation.

Abstract

Available models of circus movement reentry in cardiac muscle and of drug action on reentrant arrhythmias are based on continuous medium theory, which depends solely on the membrane ionic conductances to alter propagation. The purpose of this study is to show that the anisotropic passive properties at a microscopic level highly determine the propagation response to modification of the sodium conductance by premature action potentials and by sodium channel-blocking drugs. In young, uniform anisotropic atrial bundles, propagation of progressively earlier premature action potentials continued as a smooth process until propagation ceased simultaneously in all directions. In older, nonuniform anisotropic bundles, however, premature action potentials produced either unidirectional longitudinal conduction block or a dissociated zigzag type of longitudinal conduction (a safer type of propagation, similar to transverse propagation). Directional differences in the velocity of premature action potentials demonstrated that anisotropic propagation was necessary for a reentrant circuit to be contained within an area of 50 mm2, even with very short refractory periods. Quinidine produced Wenckebach periodicity, which disappeared after acetylcholine shortened the action potential. Quinidine also produced use-dependent dissociated zigzag longitudinal conduction in the older, nonuniform anisotropic bundles but not in the young, uniform anisotropic bundles. The electrophysiological consequence was that propagation events differed in an age-related manner in response to the same modification of the sodium conductance. The electrical events at microscopic level showed that conditions leading to obliteration of side-to-side electrical coupling between fibers (e.g., aging and chronic hypertrophy) provide a primary mechanism for reentry to occur within very small areas (1-2 mm) due to a variety of propagation phenomena that do not occur in tissues with tight electrical coupling in all directions.

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Cite This Study

Spach et al. (1988) studied Reentrant arrhythmias. Premature action potentials and Quinidine vs. Young vs older atrial bundles was evaluated on Propagation response and reentry circuit size. Conditions obliterating side-to-side electrical coupling in older human atrial bundles allowed reentry to occur within very small areas (1-2 mm) due to anisotropic discontinuous propagation.

synapsesocial.com/papers/6a0f8d8e01be78fe815fd2d3https://doi.org/10.1161/01.res.62.4.811
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Active modulation of electrical coupling between cardiac cells of the dog. A mechanism for transient and steady state variations in conduction velocity.1982 · 119 citations
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