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August 5, 1997Circulation258 citations

Noninvasive Electrocardiographic Imaging

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HOHoward S. OsterBTB TaccardiRLRobert L. Lux

Key Result

Noninvasive electrocardiographic imaging accurately reconstructed epicardial potentials, electrograms, and isochrones, locating single pacing sites to within ≤10 mm of their measured positions.

Key Points

  • This research aims to assess the accuracy and effectiveness of noninvasive electrocardiographic imaging in mapping cardiac electric activity.
  • Local electrocardiac events were initiated by pacing a dog heart in a torso-shaped tank.
  • Body surface potential measurements were taken using 384 electrodes to compute epicardial potentials noninvasively.
  • Reconstructed epicardial electrograms were compared to measured ones for accuracy assessment.
  • Reconstructed epicardial potentials from single pacing sites were accurate to within ≤10 mm of measured positions.
  • Epicardial electrograms and isochrones closely approximated measured values, indicating high accuracy.
  • Sparse and crowded isochrones revealed spatial nonuniformities in epicardial activation spread.

Structured PICO

Can noninvasive electrocardiographic imaging accurately reconstruct epicardial potentials, electrograms, and isochrones compared to direct measurement in a dog heart model?

P
Population
Dog heart in a human torso-shaped tank
I
Intervention
Noninvasive electrocardiographic imaging (ECGI) using body surface potential measurements (384 electrodes)
C
Comparator
Direct measurement of epicardial potentials (134 electrodes)
O
Outcome
Accuracy of reconstructed epicardial potentials, electrograms, and isochrones compared to measured onessurrogate

ECGI can accurately reconstruct epicardial potentials and isochrones noninvasively, providing detailed information on local cardiac activation.

Abstract

BACKGROUND: The goal of noninvasive electrocardiographic imaging (ECGI) is to determine electric activity of the heart by reconstructing maps of epicardial potentials, excitation times (isochrones), and electrograms from data measured on the body surface. METHODS AND RESULTS: Local electrocardiac events were initiated by pacing a dog heart in a human torso-shaped tank. Body surface potential measurements (384 electrodes) were used to compute epicardial potentials noninvasively. The accuracy of reconstructed epicardial potentials was evaluated by direct comparison to measured ones (134 electrodes). Protocols included pacing from single sites and simultaneously from two sites with various intersite distances. Body surface potentials showed a single minimum for both single- and double-site pacing (intersite distances of 52, 35, and 17 mm). Noninvasively reconstructed epicardial electrograms, potentials, and isochrones closely approximated the measured ones. Single pacing sites were reconstructed to within < or = 10 mm of their measured positions. Dual sites were located accurately and resolved for the above intersite distances. Regions of sparse and crowded isochrones, indicating spatial nonuniformities of epicardial activation spread, were also reconstructed. CONCLUSIONS: The study demonstrates that ECGI can reconstruct epicardial potentials, electrograms, and isochrones over the entire epicardial surface during the cardiac cycle. It can provide detailed information on local activation of the heart noninvasively. Its uses could include localization of cardiac electric events (eg, ectopic foci), characterization of nonuniformities of conduction, characterization of repolarization properties (eg, dispersion), and mapping of dynamically changing arrhythmias (eg, polymorphic VT) on a beat-by-beat basis.

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Cite This Study

Oster et al. (1997) studied Cardiac electric activity mapping. Noninvasive electrocardiographic imaging (ECGI) vs. Directly measured epicardial potentials was evaluated on Accuracy of reconstructed epicardial potentials compared to measured ones. Noninvasive electrocardiographic imaging accurately reconstructed epicardial potentials, electrograms, and isochrones, locating single pacing sites to within ≤10 mm of their measured positions.

synapsesocial.com/papers/6a0e9fc4b9cfc04f92479d98https://doi.org/10.1161/01.cir.96.3.1012
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