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April 13, 2011Journal of Cardiovascular Electrophysiology25 citations

AV Nodal Dual Pathway Electrophysiology and Wenckebach Periodicity

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YZYouhua ZhangTMTodor N. Mazgalev

Key Result

In 6 rabbit AV node preparations, dual pathway electrophysiology was dynamically involved in Wenckebach periodicity, with cycles starting via fast pathway and transitioning to slow pathway until block.

Structured PICO

Does dual pathway electrophysiology play a role in the manifestation of AV nodal Wenckebach periodicity in rabbit AV node preparations?

P
Population
6 rabbit AV node preparations
I
Intervention
Standard A1A2 and incremental pacing protocols, and slow pathway (SP) ablation
C
Comparator
Intact AV nodes (before SP ablation)
O
Outcome
AV nodal cellular action potentials and His electrogram alternans during Wenckebach periodicitysurrogate

Dual pathway electrophysiology is dynamically involved in AV nodal Wenckebach periodicity, characterized by a transition from fast to slow pathway propagation prior to block.

Abstract

INTRODUCTION: The precise mechanism(s) governing the phenomenon of AV nodal Wenckebach periodicity is not fully elucidated. Currently 2 hypotheses, the decremental conduction and the Rosenbluethian step-delay, are most frequently used. We have provided new evidence that, in addition, dual pathway (DPW) electrophysiology is directly involved in the manifestation of AV nodal Wenckebach phenomenon. METHODS AND RESULTS: AV nodal cellular action potentials (APs) were recorded from 6 rabbit AV node preparations during standard A1A2 and incremental pacing protocols. His electrogram alternans, a validated index of DPW electrophysiology, was used to monitor fast (FP) and slow (SP) pathway conduction. The data were collected in intact AV nodes, as well as after SP ablation. In all studied hearts the Wenckebach cycle started with FP propagation, followed by transition to SP until its ultimate block. During this process complex cellular APs were observed, with decremental foot formations reflecting the fading FP and second depolarizations produced by the SP. In addition, the AV node cells exhibited a progressive loss in maximal diastolic membrane potential (MDP) due to incomplete repolarization. The pause created with the blocked Wenckebach beat was associated with restoration of MDP and reinitiation of the conduction cycle via the FP wavefront. CONCLUSION: DPW electrophysiology is dynamically involved in the development of AV nodal Wenckebach periodicity. In the intact AV node, the cycle starts with FP that is progressively weakened and then replaced by SP propagation, until block occurs. AV nodal SP modification did not eliminate Wenckebach periodicity but strongly affected its paradigm.

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Cite This Study

Zhang et al. (2011) studied AV nodal Wenckebach periodicity (n=6). Standard A1A2 and incremental pacing protocols with slow pathway ablation vs. Intact AV nodes was evaluated on AV nodal cellular action potentials and His electrogram alternans. In 6 rabbit AV node preparations, dual pathway electrophysiology was dynamically involved in Wenckebach periodicity, with cycles starting via fast pathway and transitioning to slow pathway until block.

synapsesocial.com/papers/6a156864a2352da34782639dhttps://doi.org/10.1111/j.1540-8167.2011.02068.x
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