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October 1, 2003Journal of Cardiovascular Electrophysiology77 citations

Relationship Between Regional Shortening and Asynchronous Electrical Activation in a Three‐Dimensional Model of Ventricular Electromechanics

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TUTaras P. UsykAMAndrew D. McCulloch

Structured PICO

Does altered cardiac activation sequence affect the relationship between regional electrical activation and fiber shortening timing in a 3D canine ventricular model?

P
Population
Anatomically detailed three-dimensional computational model of the canine ventricular walls
I
Intervention
Altered cardiac activation sequence (ventricular paced beats from left or right ventricular epicardium)
C
Comparator
Normal beats
O
Outcome
Relationship between regional electrical activation and the timing of fiber shorteningsurrogate

Regional sequence of fiber shortening is an unreliable surrogate for regional depolarization or electromechanical activation in intact ventricles due to large variations in delay times.

Abstract

INTRODUCTION: Asynchronous electrical activation can cause abnormalities in perfusion and pump function. An electromechanical model was used to investigate the mechanical effects of altered cardiac activation sequence. METHODS AND RESULTS: We used an anatomically detailed three-dimensional computational model of the canine ventricular walls to investigate the relationship between regional electrical activation and the timing of fiber shortening during normal and ventricular paced beats. By including a simplified Purkinje fiber network and anisotropic impulse conduction in the model, computed electrical activation sequences were consistent with experimentally observed patterns. Asynchronous time courses of regional strains during beats stimulated from the left or right ventricular epicardium showed good agreement with published experimental measurements in dogs using magnetic resonance imaging tagging methods. When electrical depolarization in the model was coupled to the onset of local contractile tension development by a constant time delay of 8 msec, the mean delay from depolarization to the onset of systolic fiber shortening was 14 msec. However, the delay between the onset of fiber tension and initial shortening varied significantly; it was as late as 60 msec in some regions but was also as early as -50 msec (i.e., 42 msec before depolarization) in other regions, particularly the interventricular septum during free-wall pacing. CONCLUSION: The large variation in delay times was attributable to several factors including local anatomic variations, the location of the site relative to the activation wavefront, and regional end-diastolic strain. Therefore, we conclude that these factors, which are intrinsic to three-dimensional ventricular function, make the regional sequence of fiber shortening an unreliable surrogate for regional depolarization or electromechanical activation in the intact ventricles.

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Usyk et al. (2003) studied this question.

synapsesocial.com/papers/6a1d1a7f50ab1189c62f2265https://doi.org/10.1046/j.1540.8167.90311.x
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Also Consider

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

  1. 1Effect of alteration of left ventricular activation sequence on the left ventricular end-systolic pressure-volume relation in closed-chest dogs.1985 · 203 citations
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  5. 5Spread of Electrical Activity Through the Wall of the Ventricle1953 · 129 citations