• DocumentCode
    1398959
  • Title

    Fabrication and Evaluation of Reconstructed Cardiac Tissue and Its Application to Bio-actuated Microdevices

  • Author

    Horiguchi, Hiroshi ; Imagawa, Kentaro ; Hoshino, Takayuki ; Akiyama, Yoshitake ; Morishima, Keisuke

  • Author_Institution
    Dept. of Mech. Syst. Eng., Tokyo Univ. of Agric. & Technol., Koganei, Japan
  • Volume
    8
  • Issue
    4
  • fYear
    2009
  • Firstpage
    349
  • Lastpage
    355
  • Abstract
    In this paper, we proposed to utilize a reconstructed cardiac tissue as microactuator with easy assembly. In a glucose solution, cardiomyocytes can contract autonomously using only chemical energy. However, a single cardiomyocyte is not enough to actuate a microrobot or a mechanical system. Though the output power will increase by using multiple cardiomyocyte, it is difficult to assemble those cardiomyocyte to predefined positions one-by-one using a micromanipulator. Reconstructed cardiac tissue not only will enable researchers to assemble the cells easily and but also has a potential to improve the contractile ability. To realize a bio-actuator in this paper, we reconstructed a microcardiac tissue using an extracellular matrix, and their displacements, displacement frequency, contractile force, and lifetime of the reconstructed cardiac tissue were evaluated. Electrical and pharmacological responses of the reconstructed cardiac tissue were also evaluated. Finally, a bioactuator, a primitive micropillar actuator, was fabricated and applicability of the reconstructed cardiac tissue for bioactuators was evaluated.
  • Keywords
    bioMEMS; cardiology; cellular biophysics; microactuators; muscle; tissue engineering; bioactuator; cardiomyocytes; contractile force; extracellular matrix; glucose solution; microcardiac tissue; micropillar actuator; reconstructed cardiac tissue; Assembly; Cardiac tissue; Cardiology; Chemicals; Contracts; Fabrication; Mechanical systems; Microactuators; Power generation; Sugar; Bioactuated microsystem; Matrigel; bio-MEMS; cardiomyocyte; tissue engineering; Animals; Biomedical Engineering; Electrophysiological Phenomena; Equipment Design; Heart; Myocardial Contraction; Myocardium; Myocytes, Cardiac; Rats; Tissue Culture Techniques; Tissue Engineering;
  • fLanguage
    English
  • Journal_Title
    NanoBioscience, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-1241
  • Type

    jour

  • DOI
    10.1109/TNB.2009.2035282
  • Filename
    5401113