• DocumentCode
    953609
  • Title

    A New 3-D Finite-Element Model Based on Thin-Film Approximation for Microelectrode Array Recording of Extracellular Action Potential

  • Author

    Moulin, Cèline ; Glière, Alain ; Barbier, Daniel ; Joucla, Sebastien ; Yvert, Blaise ; Mailley, Pascal ; Guillemaud, Régis

  • Author_Institution
    LETI-CEA Recherche Technol., Grenoble, France
  • Volume
    55
  • Issue
    2
  • fYear
    2008
  • Firstpage
    683
  • Lastpage
    692
  • Abstract
    A transient finite-element model has been developed to simulate an extracellular action potential recording in a tissue slice by a planar microelectrode array. The thin-film approximation of the active neuron membrane allows the simulation within single finite-element software of the intracellular and extracellular potential fields. In comparison with a compartmental neuron model, it is shown that the thin-film approximation-based model is able to properly represent the neuron bioelectrical behavior in terms of transmembrane current and potential. Moreover, the model is able to simulate extracellular action potential recordings with properties similar to those observed in biological experiments. It is demonstrated that an ideal measurement system model can be used to represent the recording microelectrode, provided that the electronic recording system adapts to the electrode-tissue interface impedance. By comparing it with a point source approximated neuron, it is also shown that the neuron three-dimensional volume should be taken into account to simulate the extracellular action potential recording. Finally, the influence of the electrode size on the signal amplitude is evaluated. This parameter, together with the microelectrode noise, should be taken into account in order to optimize future microelectrode designs in terms of the signal-to-noise ratio.
  • Keywords
    approximation theory; arrays; bioelectric potentials; biological tissues; biomedical measurement; biomembrane transport; electric impedance; finite element analysis; microelectrodes; neurophysiology; physiological models; thin films; 3-D transient finite-element model; active neuron membrane; biological experiments; electrode size influence; electrode-tissue interface impedance; electronic recording system; extracellular action potential recording; intracellular potential fields; measurement system model; microelectrode noise; neuron bioelectrical behavior; planar microelectrode array; signal amplitude; signal-to-noise ratio terms; thin-film approximation-based model; tissue slice; transmembrane current; transmembrane potential; Bioelectric phenomena; Biological system modeling; Biomembranes; Electric potential; Extracellular; Finite element methods; Microelectrodes; Neurons; Signal to noise ratio; Transistors; Extracellular action potential recording; Finite element method; Microelectrode array; Neuron odel; Thin fil approxi ation; finite-element method (FEM); microelectrode array; neuron model; thin-film approximation; Action Potentials; Cell Membrane; Computer Simulation; Equipment Design; Equipment Failure Analysis; Extracellular Fluid; Finite Element Analysis; Imaging, Three-Dimensional; Microelectrodes; Models, Neurological; Neurons;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2007.903522
  • Filename
    4360072