DocumentCode
406318
Title
Rabbit sino-atrial node modeling: from single cell to tissue structure
Author
Garny, A. ; Hunter, P.J. ; Noble, D. ; Boyett, M.R. ; Kohl, P.
Author_Institution
Dept. of Physiol., Oxford, UK
Volume
1
fYear
2003
fDate
17-21 Sept. 2003
Firstpage
28
Abstract
Multicellular models of atrial structure and function have recently started to emerge, but still lack the level ventricular counterparts. This discrepancy needs to be addressed in order to approach whole heart modeling, including implementation of viable models of intrinsic cardiac pacemaking in the sino-atrial node (SAN). We addressed this issue by developing 1D, 2D and more, recently, 3D SAN-atrial models. Electrophysiological descriptions are based on published single cell models of rabbit SAN and atrial myocytes. Electrotonic interaction is via gap junctions, which are modeled based on experimental data from isolated rabbit SAN and atrial cell pairs. In 1D simulations, intercellular conductivities need to be scaled up beyond the levels observed in isolated cell pairs to achieve normal sinus rhythm. This is not required in models of higher spatial dimensionality. Implementation of detailed anatomical information in 2D SAN models allows reproduction of the spread of excitation from the central SAN towards the Crista terminalis, rather than the atrial septum. This level of structural detail will also be required in 3D models, as otherwise non-physiological conduction patterns are observed. Thus, dimensionality and cell distribution information are critical for normal origin and spread of SAN excitation.
Keywords
bioelectric potentials; biological tissues; cellular biophysics; electrocardiography; physiological models; Crista terminalis; atrial septum; atrial structure; cell distribution; electrophysiology; electrotonic interaction; gap junctions; heart modeling; intercellular conductivities; intrinsic cardiac pacemaking; multicellular models; normal sinus rhythm; rabbit sinoatrial node modeling; single cell; tissue structure; Anatomy; Biological system modeling; Biomedical engineering; Computational modeling; Conductivity; Heart; Physiology; Rabbits; Rhythm; Storage area networks;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2003. Proceedings of the 25th Annual International Conference of the IEEE
ISSN
1094-687X
Print_ISBN
0-7803-7789-3
Type
conf
DOI
10.1109/IEMBS.2003.1279489
Filename
1279489
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