DocumentCode :
1099352
Title :
Direct current electrical conduction block of peripheral nerve
Author :
Bhadra, Niloy ; Kilgore, Kevin L.
Author_Institution :
Case Western Reserve Univ., Cleveland, OH, USA
Volume :
12
Issue :
3
fYear :
2004
Firstpage :
313
Lastpage :
324
Abstract :
Electrical currents can be used to produce a block of action potential conduction in whole nerves. This block has a rapid onset and reversal. The mechanism of electrical nerve conduction block has not been conclusively determined, and inconsistencies appear in the literature regarding whether the block is produced by membrane hyperpolarization, depolarization, or through some other means. We have used simulations in a nerve membrane model, coupled with in vivo experiments, to identify the mechanism and principles of electrical conduction block. A nerve simulation package (Neuron) was used to model direct current (dc) block in squid, frog, and mammalian neuron models. A frog sciatic nerve/gastrocnemius preparation was used to examine nerve conduction block in vivo. Both simulations and experiments confirm that depolarization block requires less current than hyperpolarization block. Dynamic simulations suggest that block can occur under both the real physical electrode as well as adjacent virtual electrode sites. A hypothesis is presented which formulates the likely types of dc block and the possible block current requirements. The results indicate that electrical currents generally produce a conduction block due to depolarization of the nerve membrane, resulting in an inactivation of the sodium channels.
Keywords :
bioelectric potentials; biomembrane transport; electrodes; neurophysiology; physiological models; sodium; Neuron nerve simulation package; action potential conduction; dc block; direct current electrical conduction block; electrode; frog neuron model; frog sciatic nerve/gastrocnemius preparation; in vivo experiments; mammalian neuron model; membrane depolarization block; membrane hyperpolarization block; nerve membrane model; peripheral nerve; sodium channels; squid neuron model; Biomedical engineering; Biomembranes; Electrodes; Helium; In vivo; Nerve fibers; Neurons; Neurophysiology; Packaging; Physiology; Action Potentials; Animals; Axons; Computer Simulation; Decapodiformes; Electric Conductivity; Electric Stimulation; Electrodes; Electromagnetic Fields; Humans; Models, Neurological; Nerve Block; Neural Conduction; Neuromuscular Blockade; Neurons; Peripheral Nerves; Rana catesbeiana;
fLanguage :
English
Journal_Title :
Neural Systems and Rehabilitation Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
1534-4320
Type :
jour
DOI :
10.1109/TNSRE.2004.834205
Filename :
1333046
Link To Document :
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