DocumentCode :
978323
Title :
Simulation analysis of conduction block in myelinated axons induced by high-frequency biphasic rectangular pulses
Author :
Zhang, Xu ; Roppolo, James R. ; De Groat, William C. ; Tai, Changfeng
Author_Institution :
Dept. of Biomed. Eng., Capital Univ. of Med. Sci., Beijing, China
Volume :
53
Issue :
7
fYear :
2006
fDate :
7/1/2006 12:00:00 AM
Firstpage :
1433
Lastpage :
1436
Abstract :
Nerve conduction block induced by high-frequency biphasic rectangular pulses was analyzed using a lumped circuit model of the myelinated axon based on Frankenhaeuser-Huxley (FH) equations. At the temperature of 37 °C, axons of different diameters (2-20 μm) can be blocked completely at supra-threshold intensities when the stimulation frequency is above 10 kHz. However, at stimulation frequencies between 6 kHz and 9 kHz, both nerve block and repetitive firing of action potentials can be observed at different stimulation intensities. When the stimulation frequency is below 6 kHz, nerve block does not occur regardless of stimulation intensity. Larger diameter axons have a lower threshold intensity to induce conduction block. When temperature is reduced from 37 °C to 20 °C, the lowest frequency to completely block large axons (diameters 10-20 μm) decreased from 8 kHz to 4 kHz. This simulation study can guide future animal experiments as well as optimize stimulation waveforms for electrical nerve block in clinical applications.
Keywords :
bioelectric potentials; neurophysiology; patient treatment; 2 to 20 mum; 20 degC; 37 degC; 6 to 9 kHz; Frankenhaeuser-Huxley equations; action potentials; electrical nerve block; high-frequency biphasic rectangular pulses; lumped circuit model; myelinated axons; nerve conduction block; stimulation waveforms; suprathreshold intensities; Analytical models; Animals; Computational modeling; Computer simulation; Electrical stimulation; Frequency; Muscles; Nerve fibers; Pulse circuits; Temperature; Axon; electrical stimulation; high-frequency; model; nerve block; Action Potentials; Animals; Axons; Computer Simulation; Electric Stimulation Therapy; Humans; Models, Neurological; Nerve Block; Nerve Fibers, Myelinated; Neural Conduction; Therapy, Computer-Assisted;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2006.873689
Filename :
1643414
Link To Document :
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