• DocumentCode
    1330426
  • Title

    A model of the magnetic fields created by single motor unit compound action potentials in skeletal muscle

  • Author

    Parker, Kevin Kit ; Wikswo, John P., Jr.

  • Author_Institution
    Dept. of Phys. & Astron., Vanderbilt Univ., Nashville, TN, USA
  • Volume
    44
  • Issue
    10
  • fYear
    1997
  • Firstpage
    948
  • Lastpage
    957
  • Abstract
    We have developed a computationally simple model for calculating the magnetic-field strength at a point due to a single motor unit compound action potential (SMUCAP). The motor unit is defined only in terms of its anatomical features, and the SMUCAP is approximated using the tripole model. The distributed current density J is calculated within the volume defined by the motor unit. The law of Biot and Savart can then be cast in a form necessitating that J be integrated only over the region containing current sources or conductivity boundaries. The magnetic-field strength is defined as the summation of the contributions to the field made by every muscle fiber in the motor unit. Applying this model to SMUCAP measurements obtained using a high-resolution SUper Conducting Quantum Interference Device (SQUID) magnetometer may yield information regarding the distribution of action currents (AC´s) and the anatomical properties of single motor units within a muscle bundle.
  • Keywords
    SQUID magnetometers; bioelectric potentials; biomagnetism; current density; electromyography; magnetic fields; muscle; neurophysiology; physiological models; Biot Savart law; SQUID magnetometer; action currents; anatomical features; anatomical properties; computationally simple mode; conductivity boundaries; current sources; distributed current density; high-resolution superconducting quantum interference device; magnetic fields; magnetic-field strength; muscle bundle; muscle fiber; single motor unit compound action potentials; skeletal muscle; tripole model; Computational modeling; Conductivity; Current density; Current measurement; Interference; Magnetic field measurement; Magnetic fields; Muscles; Optical fiber devices; SQUIDs; Action Potentials; Animals; Electromyography; Magnetics; Models, Neurological; Motor Endplate; Motor Neurons; Muscle Fibers; Muscle, Skeletal; Neural Conduction; Poisson Distribution; Rats;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.634647
  • Filename
    634647