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May 22, 2001Circulation29 citationsOpen Access

Intercaval Block in Normal Canine Hearts

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RBRuediger BeckerABAlexander T. BauerSMStephan Metz

Key Points

  • This research aims to explore the occurrence and causes of intercaval conduction block in canine hearts.
  • High-density patch electrodes placed on the terminal crest and pectinate muscle of 10 healthy foxhounds.

Structured PICO

Does the terminal crest region in normal canine hearts have an anatomic or electrophysiological predisposition for intercaval conduction block compared to the pectinate muscle region?

P
Population
10 healthy foxhounds
I
Intervention
High-density patch electrode (10x10 bipoles) mapping on the terminal crest and adjacent pectinate muscle region during constant pacing (S1S1=200 ms) and introduction of up to 2 extrastimuli (S2, S3)
C
Comparator
Pectinate muscle region (internal comparison)
O
Outcome
Local activation patterns, conduction velocities, and effective refractory periods to determine the location and electrophysiological basis for conduction blocksurrogate

The change in fiber direction at the terminal crest/pectinate muscle junction may form the anatomic and electrophysiological basis for intercaval conduction block, which is inducible even in normal canine hearts.

Abstract

BACKGROUND: The intriguing monotony in the occurrence of intercaval conduction block during typical atrial flutter suggests an anatomic or electrophysiological predisposition for conduction abnormalities. METHODS AND RESULTS: To determine the location of and potential electrophysiological basis for conduction block in the terminal crest region, a high-density patch electrode (10x10 bipoles) was placed on the terminal crest and on the adjacent pectinate muscle region in 10 healthy foxhounds. With a multiplexer mapping system, local activation patterns were reconstructed during constant pacing (S(1)S(1)=200 ms) and introduction of up to 2 extrastimuli (S(2), S(3)). Furthermore, effective refractory periods were determined across the patch. If evident through online analysis, the epicardial location of conduction block was marked for postmortem verification of its endocardial projection. Marked directional differences in activation were found in the terminal crest region, with fast conduction parallel to and slow conduction perpendicular to the intercaval axis (1.1+/-0.4 versus 0.5+/-0.2 m/s, P30 ms. During S(3) stimulation, conduction block parallel to the terminal crest was inducible in 40% of the dogs compared with 0% in the pectinate muscle region. CONCLUSIONS: Even in normal hearts, inducible intercaval block is a relatively common finding. Anisotropic conduction properties would not explain conduction block parallel to the intercaval axis in the terminal crest region, and obviously, refractory gradients do not seem to play a role either. Thus, the change in fiber direction associated with the terminal crest/pectinate muscle junction might form the anatomic/electrophysiological basis for intercaval conduction block.

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Cite This Study

Becker et al. (2001) studied this question.

synapsesocial.com/papers/6a1bc58100ee29383e9cdde7https://doi.org/10.1161/01.cir.103.20.2521
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