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Potential distribution in three-dimensional periodic myocardium--Part II: Application to extracellular stimulation.

Publication ,  Journal Article
Krassowska, W; Frazier, DW; Pilkington, TC; Ideker, RE
Published in: IEEE transactions on bio-medical engineering
March 1990

Modeling potential distribution in the myocardium treated as a periodic structure implies that activation from high-current stimulation with extracellular electrodes is caused by the spatially oscillating components of the transmembrane potential. This hypothesis is tested by comparing the results of the model with experimental data. The conductivity, fiber orientation, the extent of the region, the location of the pacing site, and the stimulus strength determined from experiments are components of the model used to predict the distributions of potential, potential gradient, and the transmembrane potential throughout the region. Next, assuming that a specific value of the transmembrane potential is necessary and sufficient to activate fully repolarized myocardium, the model provides an analytical relation between large-scale field parameters, such as gradient and current density, and small-scale parameters, such as transmembrane potential. This relation is used to express the stimulation threshold in terms of gradient or current density components and to explain its dependence upon fiber orientation. The concept of stimulation threshold is generalized to three dimensions, and an excitability surface is constructed, which for cardiac muscle is approximately conical in shape. The numerical values of transmembrane potential and stimulation thresholds calculated using asymptotic analysis are in agreement with the results of animal experiments, confirming the validity of this approach to study the electrophysiology of periodic cardiac muscle.

Duke Scholars

Published In

IEEE transactions on bio-medical engineering

DOI

EISSN

1558-2531

ISSN

0018-9294

Publication Date

March 1990

Volume

37

Issue

3

Start / End Page

267 / 284

Related Subject Headings

  • Periodicity
  • Myocardial Contraction
  • Models, Cardiovascular
  • Membrane Potentials
  • Mathematical Computing
  • Heart
  • Electric Stimulation
  • Electric Conductivity
  • Dogs
  • Biomedical Engineering
 

Citation

APA
Chicago
ICMJE
MLA
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Krassowska, W., Frazier, D. W., Pilkington, T. C., & Ideker, R. E. (1990). Potential distribution in three-dimensional periodic myocardium--Part II: Application to extracellular stimulation. IEEE Transactions on Bio-Medical Engineering, 37(3), 267–284. https://doi.org/10.1109/10.52328
Krassowska, W., D. W. Frazier, T. C. Pilkington, and R. E. Ideker. “Potential distribution in three-dimensional periodic myocardium--Part II: Application to extracellular stimulation.IEEE Transactions on Bio-Medical Engineering 37, no. 3 (March 1990): 267–84. https://doi.org/10.1109/10.52328.
Krassowska W, Frazier DW, Pilkington TC, Ideker RE. Potential distribution in three-dimensional periodic myocardium--Part II: Application to extracellular stimulation. IEEE transactions on bio-medical engineering. 1990 Mar;37(3):267–84.
Krassowska, W., et al. “Potential distribution in three-dimensional periodic myocardium--Part II: Application to extracellular stimulation.IEEE Transactions on Bio-Medical Engineering, vol. 37, no. 3, Mar. 1990, pp. 267–84. Epmc, doi:10.1109/10.52328.
Krassowska W, Frazier DW, Pilkington TC, Ideker RE. Potential distribution in three-dimensional periodic myocardium--Part II: Application to extracellular stimulation. IEEE transactions on bio-medical engineering. 1990 Mar;37(3):267–284.

Published In

IEEE transactions on bio-medical engineering

DOI

EISSN

1558-2531

ISSN

0018-9294

Publication Date

March 1990

Volume

37

Issue

3

Start / End Page

267 / 284

Related Subject Headings

  • Periodicity
  • Myocardial Contraction
  • Models, Cardiovascular
  • Membrane Potentials
  • Mathematical Computing
  • Heart
  • Electric Stimulation
  • Electric Conductivity
  • Dogs
  • Biomedical Engineering