DocumentCode :
3603154
Title :
A \\mu m-Scale Computational Model of Magnetic Neural Stimulation in Multifascicular Peripheral Nerves
Author :
RamRakhyani, Anil Kumar ; Kagan, Zachary B. ; Warren, David J. ; Normann, Richard A. ; Lazzi, Gianluca
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Utah, Salt Lake City, UT, USA
Volume :
62
Issue :
12
fYear :
2015
Firstpage :
2837
Lastpage :
2849
Abstract :
There has been recurring interest in using magnetic neural stimulation for implantable localized stimulation. However, the large stimulation voltages and energies necessary to evoke neuronal activity have tempered this interest. To investigate the potential of magnetic stimulation as a viable methodology and to provide the ability to investigate novel coil designs that can result in lower stimulation threshold voltages and energies, there is a need for a model that accurately predicts the magnetic field-tissue interaction that results in neuronal stimulation. In this study, we provide a computational framework to accurately estimate the stimulation threshold and have validated the model with in vivo magnetic stimulation experiments. To make such predictions, we developed a micrometer-resolution anatomically driven computational model of rat sciatic nerve and quantified the effect of tissue heterogeneity (i.e., fascicular organization, axon distribution, and density) and axonal membrane capacitance on the resulting threshold. Using the multiresolution impedance method, we computed the spatial-temporal distribution of the induced electric field in the nerve and applied this field to a Frankenhaeuser-Huxley axon model in NEURON to simulate the nonlinear mechanisms of the membrane channels. The computational model developed predicts the stimulation thresholds for four magnetic coil designs with different geometrical parameters within the 95% confidence interval (experiments count = 4) of measured in vivo stimulation thresholds for the rat sciatic nerve.
Keywords :
biological tissues; biomembrane transport; coils; medical computing; neurophysiology; patient treatment; physiological models; transcranial magnetic stimulation; μm-scale computational model; Frankenhaeuser-Huxley axon model; axonal membrane capacitance; computational framework; implantable localized stimulation; in vivo magnetic stimulation; induced electric field; magnetic coil designs; magnetic field-tissue interaction; magnetic neuronal stimulation; membrane channels; micrometer-resolution; multifascicular peripheral nerves; multiresolution impedance method; neuronal activity; rat sciatic nerve; spatial-temporal distribution; stimulation threshold energies; stimulation threshold voltages; tissue heterogeneity; Biological system modeling; Biomembranes; Computational modeling; In vivo; Magnetic resonance imaging; Magnetic stimulation; Nerve fibers; Computational model; Magnetic stimulation; magnetic coil; magnetic stimulation; multiresolution model; multiscale modeling; peripheral nerve; sciatic nerve;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2015.2446761
Filename :
7126967
Link To Document :
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