DocumentCode
2819362
Title
Simulating the excitation propagation in mechano-electrical models of myocardial cells
Author
Sachse, FB ; Riedel, C. ; Seemann, G. ; Werner, CD ; Dössel, Ct
Author_Institution
Inst. fur Biomed. Technik, Karlsruhe Univ., Germany
fYear
2000
fDate
2000
Firstpage
247
Lastpage
250
Abstract
A three dimensional model of a myocardial area is presented, which allows the simulation of electrical excitation propagation under the influence of stretch. The model is based on a modified Noble-Varghese-Kohl-Noble model of a ventricular cell. The simulation of the propagation of electrical excitation via intercellular current flow is performed by the traditional and an extended bidomain model. Simulations with the models show, that the influence of the stretch dependent electrophysiological model is starting at a stretch larger than 1 leading to an approximately exponential progression of the conduction velocity in the selected range of stretch. This effect results from the raise of the resting potential by stretch with the consequence that a smaller and therefore faster deliverable amount of electrical charge is sufficient to initiate an excitation. Comparisions of the simulations with published measurements are carried out
Keywords
bioelectric phenomena; biomechanics; cardiology; physiological models; approximately exponential progression; cardiac electrophysiology; excitation propagation simulation; extended bidomain model; intercellular current flow; mechano-electrical models; modified Noble-Varghese-Kohl-Noble model; myocardial cells; published measurements; resting potential; stretch dependent electrophysiological model; stretch influence; stretch range; Anisotropic magnetoresistance; Biomedical measurements; Conductivity; Couplings; Differential equations; Extracellular; Heart; Myocardium; Resistors; Solid modeling;
fLanguage
English
Publisher
ieee
Conference_Titel
Computers in Cardiology 2000
Conference_Location
Cambridge, MA
ISSN
0276-6547
Print_ISBN
0-7803-6557-7
Type
conf
DOI
10.1109/CIC.2000.898503
Filename
898503
Link To Document