• DocumentCode
    1069942
  • Title

    Extracellular stimulation window explained by a geometry-based model of the Neuron-electrode contact

  • Author

    Buitenweg, Jan Reinoud ; Rutten, Wim L C ; Marani, Enrico

  • Author_Institution
    Signals & Syst. Group, Univ. of Twente, Enschede, Netherlands
  • Volume
    49
  • Issue
    12
  • fYear
    2002
  • Firstpage
    1591
  • Lastpage
    1599
  • Abstract
    Extracellular stimulation of single cultured neurons which are completely sealing a microelectrode is usually performed using anodic or biphasic currents of at least 200 nA. However, recently obtained experimental data demonstrate the possibility to stimulate a neuron using cathodic current pulses with less amplitude. Also, a stimulation window is observed. These findings can be explained by a finite-element model which permits geometry-based electrical representation of the neuron-electrode interface and can be used to explore the required conditions for extracellular stimulation in detail. Modulation of the voltage sensitive channels in the sealing part of the membrane appears to be the key to successful cathodic stimulation. Furthermore, the upper limit of the stimulation window can be explained as a normal consequence of the neuronal membrane electrophysiology.
  • Keywords
    bioelectric potentials; biological techniques; biomedical electrodes; biomembrane transport; current density; finite element analysis; microelectrodes; neurophysiology; action potentials; anodic currents; biphasic currents; cathodic current pulses; cathodic stimulation; extracellular stimulation window; finite-element model; geometry-based electrical representation; geometry-based model; membrane; microelectrode; neuron stimulation; neuron-electrode contact; neuron-electrode interface; neuronal membrane electrophysiology; sealing part; single cultured neurons; stimulation window; voltage sensitive channels; Biomedical electrodes; Biomembranes; Contacts; Costs; Extracellular; Finite element methods; Microelectrodes; Neurons; Solid modeling; Voltage; Action Potentials; Animals; Cell Adhesion; Cell Membrane; Cells, Cultured; Coated Materials, Biocompatible; Computer Simulation; Electric Stimulation; Electromagnetic Fields; Electrophysiology; Extracellular Space; Finite Element Analysis; Ganglia, Spinal; Ion Channel Gating; Ion Channels; Microelectrodes; Models, Neurological; Neurons; Rats; Reproducibility of Results; Sensitivity and Specificity;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2002.804504
  • Filename
    1159153