DocumentCode
738779
Title
Local Gradients in Electrotonic Loading Modulate the Local Effective Refractory Period: Implications for Arrhythmogenesis in the Infarct Border Zone
Author
Connolly, Adam ; Trew, Mark L. ; Smaill, Bruce H. ; Plank, Gernot ; Bishop, Martin J.
Author_Institution
Dept. of Biomed. Eng., Kings Coll. London, London, UK
Volume
62
Issue
9
fYear
2015
Firstpage
2251
Lastpage
2259
Abstract
Ectopic electrical activity that originates in the peri-infarct region can give rise to potentially lethal re-entrant arrhythmias. The spatial variation in electrotonic loading that results from structural remodelling in the infarct border zone may increase the probability that focal activity will trigger electrical capture, but this has not previously been investigated systematically. This study uses in-silico experiments to examine the structural modulation of effective refractory period on ectopic beat capture. Informed by 3-D reconstructions of myocyte organization in the infarct border zone, a region of rapid tissue expansion is abstracted to an idealized representation. A novel metric is introduced that defines the local electrotonic loading as a function of passive tissue properties and boundary conditions. The effective refractory period correlates closely with local electrotonic loading, while the action potential duration, conduction, and upstroke velocity reduce in regions of increasing electrotonic load. In the presence of focal ectopic stimuli, spatial variation in effective refractory period can cause unidirectional conduction block providing a substrate for reentrant arrhythmias. Consequently, based on the observed results, a possible novel mechanism for arrhythmogenesis in the infarct border zone is proposed.
Keywords
bioelectric potentials; biomedical electronics; medical disorders; medical signal processing; signal reconstruction; 3D reconstructions; action potential; arrhythmogenesis; boundary conditions; conduction velocity; ectopic beat capture; ectopic electrical activity; electrotonic loading; focal ectopic stimuli; in-silico experiments; infarct border zone; lethal reentrant arrhythmias; local effective refractory period; local electrotonic loading; myocyte organization; passive tissue properties; periinfarct region; structural modulation; structural remodelling; tissue expansion; unidirectional conduction block; upstroke velocity; Biomedical measurement; Boundary conditions; Conductivity; Electric potential; Geometry; Loading; Mathematical model; Action potential (AP); Bidomain; action potential; arrhythmogenesis; bidomain; cardiac; electrophysiology; monodomain; propagation;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2015.2421296
Filename
7083757
Link To Document