• DocumentCode
    1318308
  • Title

    Point source nerve bundle stimulation: effects of fiber diameter and depth on simulated excitation

  • Author

    Altman, Ken W. ; Plonsey, Robert

  • Author_Institution
    Dept. of Biomed. Eng., Duke Univ., Durham, NC, USA
  • Volume
    37
  • Issue
    7
  • fYear
    1990
  • fDate
    7/1/1990 12:00:00 AM
  • Firstpage
    688
  • Lastpage
    698
  • Abstract
    Excitation response of different diameter myelinated nerve fibers situated at various depths within a cylindrical nerve bundle from the applied field of a point source electrode are analytically evaluated. For the potential field calculation, the fiber bundle is considered to be immersed in an infinite isotropic conductive medium and is idealized as an infinitely extending cylinder represented as an anisotropic bidomain (where electrical coupling from interstitial to intracellular space is included). Myelinated nerve fiber excitation is determined from a core-conductive nerve model, whose nodal currents are described by the Frankenhaeuser-Huxley kinetics and the aforementioned field providing the applied potentials. The stimulation level necessary for a nerve fiber to reach threshold is quantified in response to four descriptions of the volume conductor: the isotropic homogeneous case, the monodomain case, the bidomain case, and the modified monodomain case. Model results indicate the importance of a bidomain representation of the nerve bundle and provide insight into the relationship between the physical medium and the physiological properties of nerve fiber excitation.
  • Keywords
    bioelectric phenomena; neurophysiology; physiological models; Frankenhaeuser-Huxley kinetics; anisotropic bidomain; cylindrical nerve bundle; fiber depth; fiber diameter; infinite isotropic conductive medium; myelinated nerve fibers; nerve excitation response; nodal currents; physiological properties; point source nerve bundle stimulation; potential field calculation; Anisotropic magnetoresistance; Biomembranes; Conductors; Couplings; Electrodes; Kinetic theory; Nerve fibers; Nerve tissues; Pathology; Physics computing; Electric Conductivity; Electric Stimulation; Evoked Potentials; Fourier Analysis; Models, Neurological; Nerve Fibers, Myelinated;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.55679
  • Filename
    55679