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May 17, 2004AJP Heart and Circulatory Physiology44 citationsOpen Access

Transmural mechanics at left ventricular epicardial pacing site

HAHiroshi AshikagaJOJeffrey H. OmensNINeil B. Ingels

Key Result

Left ventricular epicardial pacing in normal dog hearts depressed overall fiber-sheet deformation and reversed the transmural mechanical activation sequence, impairing wall thickening.

Structured PICO

Does left ventricular epicardial pacing alter transmural fiber-sheet mechanics compared to normal atrioventricular conduction in normal dog hearts?

P
Population
Normal dog hearts in vivo
I
Intervention
Left ventricular epicardial pacing
C
Comparator
Normal atrioventricular conduction
O
Outcome
Transmural fiber-sheet mechanics (three-dimensional finite deformation in the anterior wall)surrogate

Left ventricular epicardial pacing impairs end-systolic wall thickening due to overall depression of fiber-sheet deformation and reverses the transmural mechanical activation sequence.

Abstract

Left ventricular (LV) epicardial pacing acutely reduces wall thickening at the pacing site. Because LV epicardial pacing also reduces transverse shear deformation, which is related to myocardial sheet shear, we hypothesized that impaired end-systolic wall thickening at the pacing site is due to reduction in myocardial sheet shear deformation, resulting in a reduced contribution of sheet shear to wall thickening. We also hypothesized that epicardial pacing would reverse the transmural mechanical activation sequence and thereby mitigate normal transmural deformation. To test these hypotheses, we investigated the effects of LV epicardial pacing on transmural fiber-sheet mechanics by determining three-dimensional finite deformation during normal atrioventricular conduction and LV epicardial pacing in the anterior wall of normal dog hearts in vivo. Our measurements indicate that impaired end-systolic wall thickening at the pacing site was not due to selective reduction of sheet shear, but rather resulted from overall depression of fiber-sheet deformation, and relative contributions of sheet strains to wall thickening were maintained. These findings suggest lack of effective end-systolic myocardial deformation at the pacing site, most likely because the pacing site initiates contraction significantly earlier than the rest of the ventricle. Epicardial pacing also induced reversal of the transmural mechanical activation sequence, which depressed sheet extension and wall thickening early in the cardiac cycle, whereas transverse shear and sheet shear deformation were not affected. These findings suggest that normal sheet extension and wall thickening immediately after activation may require normal transmural activation sequence, whereas sheet shear deformation may be determined by local anatomy.

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Cite This Study

Ashikaga et al. (2004) studied Normal dog hearts. Left ventricular epicardial pacing vs. Normal atrioventricular conduction was evaluated on Transmural fiber-sheet mechanics (three-dimensional finite deformation). Left ventricular epicardial pacing in normal dog hearts depressed overall fiber-sheet deformation and reversed the transmural mechanical activation sequence, impairing wall thickening.

synapsesocial.com/papers/6a0eb7d38da6dd046147a96ahttps://doi.org/10.1152/ajpheart.01013.2003
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