• DocumentCode
    1521320
  • Title

    Miniature heart cell force transducer system implemented in MEMS technology

  • Author

    Lin, Gisela ; Palmer, Roy E. ; Pister, Kristofer S J ; Roos, Kenneth P.

  • Author_Institution
    Stand. MEMS Inc., Rancho Palos Verdes, CA, USA
  • Volume
    48
  • Issue
    9
  • fYear
    2001
  • Firstpage
    996
  • Lastpage
    1006
  • Abstract
    A fully submersible force transducer system for use with isolated heart cells has been implemented using microelectromechanical systems (MEMS) technology. By using integrated circuit fabrication techniques to make mechanical as well as electrical components, the entire low-mass transducer is only a few cubic millimeters in size and is of higher fidelity (≈100 nN and 13.3 kHz in solution) than previously available. When chemically activated, demembranated single cells attached to the device contract and slightly deform a strain gauge whose signal is converted to an amplified electrical output. When integrated with a video microscope, the system is capable of optical determination of contractile protein striation periodicity and simultaneous measurement of heart cell forces in the 100-nN to 50-μN range. The average measured maximal force was F max=5.77±2.38 μN. Normalizing for the cell´s cross-sectional area, F max/area was 14.7±7.7 mN/mm 2. Oscillatory stiffness data at frequencies up to 1 kHz has also been recorded from relaxed and contracted cells. This novel MEMS force transducer system permits higher fidelity measurements from cardiac myocytes than available from standard macro-sized transducers.
  • Keywords
    biological techniques; biomechanics; biomedical transducers; cardiology; cellular biophysics; force measurement; microsensors; 1 kHz; 13.3 kHz; MEMS technology; amplified electrical output; biophysical instrumentation; cardiac myocytes; cellular biomechanics; contractile protein striation periodicity; cross-sectional area; integrated circuit fabrication techniques; isolated heart cells; low-mass transducer; miniature heart cell force transducer system; optical determination; standard macro-sized transducers; video microscope; Chemical technology; Force measurement; Heart; Integrated circuit technology; Isolation technology; Microelectromechanical systems; Micromechanical devices; Optical microscopy; Transducers; Underwater vehicles; Animals; Equipment Design; Microscopy, Electron, Scanning; Miniaturization; Myocardial Contraction; Myocardium; Rats; Signal Processing, Computer-Assisted; Transducers;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.942589
  • Filename
    942589