DocumentCode
1051720
Title
Biophysical Model of an Auditory Nerve Fiber With a Novel Adaptation Component
Author
Woo, Jihwan ; Miller, Charles A. ; Abbas, Paul J.
Author_Institution
Dept. of Otolaryngology, Univ. of Iowa Hosp. & Clinics, Iowa City, IA, USA
Volume
56
Issue
9
fYear
2009
Firstpage
2177
Lastpage
2180
Abstract
Recent data from feline auditory nerve fibers (ANFs) indicate that electrically stimulated fibers can undergo large degrees of rate adaptation to pulse-train stimuli using pulse rates within the range used by clinical auditory prostheses. However, the application of Hodgkin-Huxley-type models does not produce such adaptation, which occurs over time periods on the order of 100 ms. We describe our development of a computational ANF axon model that incorporates a time-changing external potassium concentration ([K+]ext) that depends on potassium currents produced by active nodal channel activity. This relatively simple and computationally tractable approach produces poststimulus time histograms that are similar to experimental (cat) data. Furthermore, this mechanism could be easily incorporated into other models to produce much more realistic estimates of the neural coding produced by repeated electric stimulation.
Keywords
bioelectric phenomena; brain; cellular biophysics; hearing; neurophysiology; potassium; prosthetics; Hodgkin-Huxley-type models; K; active nodal channel activity; auditory nerve fiber; auditory prostheses; axon model; biophysical model; electric stimulation; electrically stimulated fibers; external potassium concentration; neural coding; poststimulus time histograms; potassium currents; pulse-train stimuli; rate adaptation; Biological materials; Cities and towns; Computational modeling; Electrodes; Equations; Histograms; Hospitals; Nerve fibers; Neural prosthesis; Permission; Physiology; Prosthetics; Adaptation; auditory nerve fiber; auditory prosthesis; axonal model; electric stimulation; potassium concentration; Adaptation, Physiological; Algorithms; Animals; Cats; Cochlear Nerve; Electric Stimulation; Models, Neurological; Nerve Fibers;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2009.2023978
Filename
5061628
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