DocumentCode
1413326
Title
Intercellular coupling mediated by potassium accumulation in peg-and-socket junctions
Author
Vigmond, Edward J. ; Bardakjian, Berj L. ; Thuneberg, Lars ; Huizinga, Jan D.
Author_Institution
Toronto Univ., Ont., Canada
Volume
47
Issue
12
fYear
2000
Firstpage
1576
Lastpage
1583
Abstract
Coupling of smooth muscle cells is important for coordination of gastrointestinal motility. Small structures called peg-and-socket junctions (PSJs) have been found between muscle cells and may play a role in electrical coupling due to extracellular potassium accumulation in the narrow cleft between the muscle cells. A model was developed in which an electrical boundary element model of the cell morphology is used in conjunction with a finite difference model which described ionic fluxes and diffusion of extracellular potassium in the PSJ. The boundary element model used a combination of triangular and cylindrical elements to reduce computational demand while ensuring accuracy. Barrier kinetics were used to model the underlying ionic transport mechanisms. Seven ionic transport mechanisms were used to create the transmembrane voltage waveform. Results indicate that PSJs may produce significant coupling between smooth muscle cells under appropriate conditions. Coupling increased exponentially with increasing length and with decreasing intercellular gap.
Keywords
biodiffusion; bioelectric phenomena; biomembrane transport; boundary-elements methods; muscle; physiological models; potassium; K; barrier kinetics; cell morphology; electrical coupling; gastrointestinal motility; intercellular coupling; intercellular gap; narrow cleft; peg-and-socket junctions; potassium accumulation; smooth muscle; transmembrane voltage waveform; Colon; Contacts; Couplings; Extracellular; Frequency; Intestines; Muscles; Oscillators; Pacemakers; Stomach; Adherens Junctions; Computer Simulation; Extracellular Space; Finite Element Analysis; Gap Junctions; Gastrointestinal Motility; Ion Transport; Models, Biological; Muscle, Smooth; Potassium;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.887938
Filename
887938
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