DocumentCode
1573035
Title
Simulation Analysis of Nerve Block by High Frequency Biphasic Electrical Current Based on Frankenhaeuser-Huxley Model
Author
Zhang, Xu ; Roppolo, James ; De Groat, William ; Tai, Changfeng
Author_Institution
Capital Univ. of Med. Sci., Beijing
fYear
2006
Firstpage
4247
Lastpage
4250
Abstract
Nerve conduction block induced by high frequency biphasic electrical current was simulated using a lumped circuit model of the myelinated axon based on Frankenhaueuser-Huxley (FH) equations. Axons of different diameters (5-20 mum) can be blocked completed when the stimulation frequency is above 10 kHz. At higher frequency a higher stimulation intensity is needed to block nerve conduction. Larger diameter axons have lower block threshold. The activation of potassium channels, rather than inactivation of sodium channels, is the possible mechanism underlying the nerve conduction block of the myelinated axon induced by high frequency biphasic pulse current. This simulation study, which provides more information about the axonal conduction block induced by high frequency biphasic pulse current, can guide future animal experiments as well as optimize stimulation waveforms for electrical nerve block in possible clinical applications
Keywords
bioelectric phenomena; biomembrane transport; neurophysiology; physiological models; potassium; sodium; 5 to 20 mum; Frankenhaeuser-Huxley model; axonal conduction block; high frequency biphasic electrical current; high frequency biphasic pulse current; lumped circuit model; myelinated axon; nerve conduction block; potassium channels; sodium channels; Analytical models; Animals; Biomembranes; Circuit simulation; Electrodes; Equations; Frequency; Medical simulation; Nerve fibers; Predictive models;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2005. IEEE-EMBS 2005. 27th Annual International Conference of the
Conference_Location
Shanghai
Print_ISBN
0-7803-8741-4
Type
conf
DOI
10.1109/IEMBS.2005.1615402
Filename
1615402
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