• DocumentCode
    1082484
  • Title

    Pattern modification of a neuronal network for individual-cell-based electrophysiological measurement using photothermal etching of an agarose architecture with a multielectrode array

  • Author

    Suzuki, I. ; Sugio, Y. ; Moriguchi, H. ; Hattori, A. ; Yasuda, K. ; Jimbo, Y.

  • Author_Institution
    Dept. of Life Sci., Univ. of Tokyo, Tokyo, Japan
  • Volume
    151
  • Issue
    3
  • fYear
    2004
  • fDate
    6/4/2004 12:00:00 AM
  • Firstpage
    116
  • Lastpage
    121
  • Abstract
    A new type of individual-cell-based on-chip multielectrode array (MEA) cell-cultivation system with an agarose microchamber (AMC) array for topographical control of the network patterns of a living neuronal network has been developed. The advantages of this system are that it allows control of the cell positions and numbers for cultivation using AMCs, as well as easy and flexible control of the pattern of connections between the AMCs through photothermal etching where a portion of the agarose layer is melted with a 1480 nm infrared laser beam. With adequate laser power, narrow micrometer-order grooves (microchannels) can easily be fabricated that can be used to combine neighbouring AMCs to enable topographical control of the neural network pattern. Using this system, an individual-cell-based neural network pattern was formed of rat hippocampal cells within the AMC array without cells escaping from the electrode positions in the microchamber during an eight-day cultivation, and could record cell firing in response to 1.5 V, 500 kHz stimulation through an electrode. This demonstrated the potential of the on-chip AMC/MEA cell cultivation system for long-term single-cell-based electrophysiological measurement of a neural network system.
  • Keywords
    arrays; bioelectric phenomena; biological techniques; microelectrodes; neural nets; tissue engineering; 1.5 V; 1480 nm; 500 kHz; agarose architecture; agarose microchamber; cell-cultivation system; cultivation; electrode positions; individual-cell- based on-chip multielectrode array; individual-cell-based electrophysiological measurement; laser power; living neuronal network; microchamber array; microchannels; multielectrode array; narrow micrometer-order grooves; neuronal network; pattern modification; photothermal etching; rat hippocampal cells; topographical control;
  • fLanguage
    English
  • Journal_Title
    Nanobiotechnology, IEE Proceedings -
  • Publisher
    iet
  • ISSN
    1478-1581
  • Type

    jour

  • DOI
    10.1049/ip-nbt:20040690
  • Filename
    1327498