DocumentCode :
1153500
Title :
A Tissue Framework for Simulating the Effects of Gastric Electrical Stimulation and In Vivo Validation
Author :
Peng Du ; O´Grady, Greg ; Windsor, John A. ; Cheng, Leo K. ; Pullan, Andrew J.
Author_Institution :
Auckland Bioeng. Inst., Univ. of Auckland, Auckland, New Zealand
Volume :
56
Issue :
12
fYear :
2009
Firstpage :
2755
Lastpage :
2761
Abstract :
Gastric pacing is used to modulate normal or abnormal gastric slow-wave activity for therapeutic purposes. New protocols are required that are optimized for motility outcomes and energy efficiency. A computational tissue model was developed, incorporating smooth muscle and interstitial cell of Cajal layers, to enable predictive simulations of slow-wave entrainment efficacy under different pacing frequencies. Concurrent experimental validation was performed via high-resolution entrainment mapping in a porcine model (bipolar pacing protocol: 2 mA amplitude; 400 ms pulsewidth; 17-s period; midcorpus). Entrained gastric slow-wave activity was found to be anisotropic (circular direction: 8.51 mmmiddots-1; longitudinal: 4.58 mmmiddots -1), and the simulation velocities were specified accordingly. Simulated and experimental slow-wave activities demonstrated satisfactory agreement, showing similar propagation patterns and frequencies (3.5-3.6 cycles per minute), and comparable zones of entrainment (ZOEs; 64 cm 2). The area of ZOE achieved was found to depend on the phase interactions between the native and entrained activities. This model allows the predictions of phase interactions between native and entrained activities, and will be useful for determining optimal frequencies for gastric pacing, including multichannel pacing studies. The model provides a framework for the development of more sophisticated predictive gastric pacing simulations in future.
Keywords :
bioelectric phenomena; biological tissues; cellular biophysics; neuromuscular stimulation; physiological models; slow wave structures; Cajal layers; bipolar pacing protocol; computational tissue model; gastric electrical stimulation; gastric pacing; gastric slow-wave activity; high-resolution entrainment mapping; interstitial cell; porcine model; smooth muscle; time 17 s; tissue framework; Anisotropic magnetoresistance; Computational modeling; Electrical stimulation; Energy efficiency; Frequency; In vivo; Muscles; Predictive models; Protocols; Space vector pulse width modulation; Computational simulation; gastric electrical stimulation (GES); gastric pacing; gastrointestinal modeling; pacemaker potential; slow wave; Animals; Computer Simulation; Electric Stimulation; Gastrointestinal Motility; Models, Biological; Muscle Contraction; Muscle, Smooth; Stomach; Swine;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2009.2027690
Filename :
5175478
Link To Document :
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