• DocumentCode
    1069930
  • Title

    Modeled channel distributions explain extracellular recordings from cultured neurons sealed to microelectrodes

  • 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
    1580
  • Lastpage
    1590
  • Abstract
    Amplitudes and shapes of extracellular recordings from single neurons cultured on a substrate embedded microelectrode depend not only on the volume conducting properties of the neuron-electrode interface, but might also depend on the distribution of voltage-sensitive channels over the neuronal membrane. In this paper, finite-element modeling is used to quantify the effect of these channel distributions on the neuron-electrode contact. Slight accumulation or depletion of voltage-sensitive channels in the sealing membrane of the neuron results in various shapes and amplitudes of simulated extracellular recordings. However, estimation of channel-specific accumulation factors from extracellular recordings can be obstructed by co-occuring ion currents and defect sealing. Experimental data from cultured neuron-electrode interfaces suggest depletion of sodium channels and accumulation of potassium channels.
  • Keywords
    biological techniques; biomedical electrodes; biomembrane transport; finite element analysis; microelectrodes; neurophysiology; prosthetics; K; Na; channel-specific accumulation factors; co-occuring ion currents; cultured neuron-electrode interfaces; cultured neurons; defect sealing; extracellular recording amplitudes; extracellular recording shapes; finite-element modeling; microelectrodes; modeled channel distributions; neuro-electronic interface; neuron-electrode interface; neuronal membrane; neuroprosthetic application; neuroscientific application; potassium channel accumulation; sealing membrane; simulated extracellular recordings; single neurons; sodium channel depletion; substrate embedded microelectrode; voltage-sensitive channels; volume conducting properties; Bioelectric phenomena; Biomembranes; Contacts; Current density; Electric potential; Extracellular; Microelectrodes; Neurons; Shape; Voltage; Action Potentials; Animals; Cell Adhesion; Cell Membrane; Cells, Cultured; Coated Materials, Biocompatible; Computer Simulation; 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; Sodium Channels;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2002.805555
  • Filename
    1159152