DocumentCode
2394544
Title
Influence of coil current configuration in magnetic stimulation of a nerve fiber in inhomogeneous and anisotropic conducting media
Author
Hyodo, Akira ; Iramina, Keiji ; Ueno, Shoogo
Author_Institution
Grad. Sch. of Syst. Life Sci., Kyushu Univ., Fukuoka, Japan
fYear
2009
fDate
3-6 Sept. 2009
Firstpage
6501
Lastpage
6504
Abstract
In this study, we used a computer simulation to investigate the effects of the coil current waveform and direction on the excitation processes of the nerve axon in inhomogeneous and anisotropic conducting media in magnetic stimulation. We assumed that the nerve axon was located in the media with 2 regions having different conductivities or electrical anisotropy that simulate different tissue types. The distribution of induced electric fields was calculated with the finite element method (FEM). The nerve fiber was modeled after equivalent electrical circuits having active nodes of Ranvier. The direction of the coil current at the intersection of a figure-eight coil was assumed to flow perpendicular to the nerve axon. We observed the excitation threshold when the coil current waveform and direction are changed with varying the electrical properties such as tissue electrical conductivity and anisotropy. The simulation results show that the threshold decreases with the increase of conductivity ratio between 2 regions and it also depends on the coil current waveform and direction. Biphasic coil current has lower threshold than monophasic one when the current direction is the same in both waveforms. The results also suggest that the tissue anisotropy strongly affects the excitation threshold. The threshold increases with the increase of tissue anisotropic ratio of longitudinal direction to the transverse one respect to the nerve axon. The results in this study give useful information to explain the experimental results of the magnetic stimulation of human peripheral nervous systems and the theoretical model is applicable to understand the characteristics in magnetic stimulation of both peripheral and central nervous systems.
Keywords
bioelectric phenomena; biological tissues; biomagnetism; coils; finite element analysis; inhomogeneous media; magnetic anisotropy; neurophysiology; waveform analysis; FEM; anisotropic conducting media; biphasic coil current; coil current configuration influence; coil current waveform; excitation threshold; finite element method; human peripheral nervous systems; inhomogeneous conducting media; nerve axon direction; nerve fiber magnetic stimulation; tissue electrical anisotropy; tissue electrical conductivity; tissue types; Action Potentials; Animals; Anisotropy; Computer Simulation; Dose-Response Relationship, Radiation; Electromagnetic Fields; Humans; Magnetics; Models, Neurological; Nerve Fibers; Radiation Dosage;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2009. EMBC 2009. Annual International Conference of the IEEE
Conference_Location
Minneapolis, MN
ISSN
1557-170X
Print_ISBN
978-1-4244-3296-7
Electronic_ISBN
1557-170X
Type
conf
DOI
10.1109/IEMBS.2009.5333594
Filename
5333594
Link To Document