Literature DB >> 16041996

Simulation analysis of conduction block in unmyelinated axons induced by high-frequency biphasic electrical currents.

Changfeng Tai1, William C de Groat, James R Roppolo.   

Abstract

Nerve conduction block induced by high-frequency biphasic electrical currents is analyzed using a lumped circuit model of the unmyelinated axon based on Hodgkin-Huxley equations. Axons of different diameters (5-20 microm) can not be blocked completely when the stimulation frequency is between 2 kHz and 4 kHz. However, when the stimulation frequency is above 4 kHz, all axons can be blocked. At high-frequency a higher stimulation intensity is needed to block nerve conduction. The larger diameter axon has a lower threshold intensity for conduction block. The stimulation waveform in which the pulsewidth changes with frequency is more effective in blocking nerve conduction than the waveform in which the pulsewidth is fixed. The activation of potassium channels, rather than inactivation of sodium channels, is the possible mechanism underlying the nerve conduction block of the unmyelinated axon. This simulation study further increases our understanding of axonal conduction block induced by high-frequency biphasic currents, and can guide future animal experiments as well as optimize stimulation waveforms that might be used for electrical nerve block in clinical applications.

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Year:  2005        PMID: 16041996      PMCID: PMC2820275          DOI: 10.1109/tbme.2005.847561

Source DB:  PubMed          Journal:  IEEE Trans Biomed Eng        ISSN: 0018-9294            Impact factor:   4.538


  27 in total

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Authors:  P H Veltink; J A van Alsté; H B Boom
Journal:  IEEE Trans Biomed Eng       Date:  1988-01       Impact factor: 4.538

2.  Modeling the excitability of mammalian nerve fibers: influence of afterpotentials on the recovery cycle.

Authors:  Cameron C McIntyre; Andrew G Richardson; Warren M Grill
Journal:  J Neurophysiol       Date:  2002-02       Impact factor: 2.714

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Authors:  J R Schwarz; G Eikhof
Journal:  Pflugers Arch       Date:  1987-08       Impact factor: 3.657

4.  High frequency electrostimulation of excitable cells.

Authors:  F Rattay
Journal:  J Theor Biol       Date:  1986-11-07       Impact factor: 2.691

5.  Response of single alpha motoneurons to high-frequency pulse trains. Firing behavior and conduction block phenomenon.

Authors:  B R Bowman; D R McNeal
Journal:  Appl Neurophysiol       Date:  1986

6.  A quantitative description of membrane currents in rabbit myelinated nerve.

Authors:  S Y Chiu; J M Ritchie; R B Rogart; D Stagg
Journal:  J Physiol       Date:  1979-07       Impact factor: 5.182

7.  A quantitative approach to modeling mammalian myelinated nerve fibers for electrical prosthesis design.

Authors:  J H Frijns; J Mooij; J H ten Kate
Journal:  IEEE Trans Biomed Eng       Date:  1994-06       Impact factor: 4.538

8.  Modeling axon membranes for functional electrical stimulation.

Authors:  F Rattay; M Aberham
Journal:  IEEE Trans Biomed Eng       Date:  1993-12       Impact factor: 4.538

9.  Control of muscle contractile force through indirect high-frequency stimulation.

Authors:  M Solomonow; E Eldred; J Lyman; J Foster
Journal:  Am J Phys Med       Date:  1983-04

10.  Sensory effects of transient electrical stimulation--evaluation with a neuroelectric model.

Authors:  J P Reilly; V T Freeman; W D Larkin
Journal:  IEEE Trans Biomed Eng       Date:  1985-12       Impact factor: 4.538

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  41 in total

1.  Mechanism of nerve conduction block induced by high-frequency biphasic electrical currents.

Authors:  Xu Zhang; James R Roppolo; William C de Groat; Changfeng Tai
Journal:  IEEE Trans Biomed Eng       Date:  2006-12       Impact factor: 4.538

2.  Simulation of high-frequency sinusoidal electrical block of mammalian myelinated axons.

Authors:  Niloy Bhadra; Emily A Lahowetz; Stephen T Foldes; Kevin L Kilgore
Journal:  J Comput Neurosci       Date:  2007-01-03       Impact factor: 1.621

3.  Influence of frequency and temperature on the mechanisms of nerve conduction block induced by high-frequency biphasic electrical current.

Authors:  Jicheng Wang; Bing Shen; James R Roppolo; William C de Groat; Changfeng Tai
Journal:  J Comput Neurosci       Date:  2007-08-08       Impact factor: 1.621

4.  Differential fiber-specific block of nerve conduction in mammalian peripheral nerves using kilohertz electrical stimulation.

Authors:  Yogi A Patel; Robert J Butera
Journal:  J Neurophysiol       Date:  2015-04-15       Impact factor: 2.714

Review 5.  Somato-Autonomic Reflexes of Acupuncture.

Authors:  Qiufu Ma
Journal:  Med Acupunct       Date:  2020-12-16

6.  Action potential block in neurons by infrared light.

Authors:  Alex J Walsh; Gleb P Tolstykh; Stacey Martens; Bennett L Ibey; Hope T Beier
Journal:  Neurophotonics       Date:  2016-12-01       Impact factor: 3.593

7.  Molecular sequelae of topographically guided peripheral nerve repair.

Authors:  Vivek Mukhatyar; Balakrishna Pai; Isaac Clements; Akhil Srinivasan; Richard Huber; Akash Mehta; Shoumit Mukhopadaya; Soumon Rudra; Gaurangkumar Patel; Lohitash Karumbaiah; Ravi Bellamkonda
Journal:  Ann Biomed Eng       Date:  2013-12-20       Impact factor: 3.934

8.  Dynamics and sensitivity analysis of high-frequency conduction block.

Authors:  D Michael Ackermann; Niloy Bhadra; Meana Gerges; Peter J Thomas
Journal:  J Neural Eng       Date:  2011-11-04       Impact factor: 5.379

9.  Axonal model for temperature stimulation.

Authors:  Sarah Fribance; Jicheng Wang; James R Roppolo; William C de Groat; Changfeng Tai
Journal:  J Comput Neurosci       Date:  2016-06-24       Impact factor: 1.621

10.  Modulation of axonal excitability by high-frequency biphasic electrical current.

Authors:  Hailong Liu; James R Roppolo; William C de Groat; Changfeng Tai
Journal:  IEEE Trans Biomed Eng       Date:  2009-04-21       Impact factor: 4.538

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