Title :
A model of the stimulation of a nerve fiber by electromagnetic induction
Author :
Roth, Bradley J. ; Basser, Peter J.
Author_Institution :
Nat. Inst. of Health, Bethesda, MD, USA
fDate :
6/1/1990 12:00:00 AM
Abstract :
A model is presented to explain the physics of nerve stimulations by electromagnetic induction. Maxwell´s equations predict the induced electric field distribution that is produced when a capacitor is discharged through a stimulating coil. A nonlinear Hodgkin-Huxley cable model describes the response of the nerve fiber to this induced electric field. Once the coil´s position, orientation, and shape are given and the resistance, capacitance, and initial voltage of the stimulating circuit are specified, this model predicts the resulting transmembrane potential of the fiber as a function of distance and time. It is shown that the nerve fiber is stimulated by the gradient of the component of the induced electric field that is parallel to the fiber, which hyperpolarizes or depolarizes the membrane and may stimulate an action potential. The model predicts complicated dynamics such as action potential annihilation and dispersion.
Keywords :
biological effects of radiation; electromagnetic induction; neurophysiology; physiological models; Maxwell´s equations; action potential annihilation; action potential dispersion; electromagnetic induction; hyperpolarisation; induced electric field; membrane depolarisation; nerve fiber stimulation model; nonlinear Hodgkin-Huxley cable model; transmembrane potential; Capacitors; Coils; Electromagnetic induction; Electromagnetic modeling; Maxwell equations; Nerve fibers; Physics; Power cables; Predictive models; Shape; Action Potentials; Electric Stimulation; Electromagnetics; Models, Neurological; Nerve Fibers; Reaction Time;
Journal_Title :
Biomedical Engineering, IEEE Transactions on