• DocumentCode
    24242
  • Title

    Development of Surrogate Spinal Cords for the Evaluation of Electrode Arrays Used in Intraspinal Implants

  • Author

    Cheng Cheng ; Kmech, J. ; Mushahwar, V.K. ; Elias, Anastasia L.

  • Author_Institution
    Dept. of Chem. & Mater. Eng., Univ. of Alberta, Edmonton, AB, Canada
  • Volume
    60
  • Issue
    6
  • fYear
    2013
  • fDate
    Jun-13
  • Firstpage
    1667
  • Lastpage
    1676
  • Abstract
    We report the development of a surrogate spinal cord for evaluating the mechanical suitability of electrode arrays for intraspinal implants. The mechanical and interfacial properties of candidate materials (including silicone elastomers and gelatin hydrogels) for the surrogate cord were tested. The elastic modulus was characterized using dynamic mechanical analysis, and compared with values of actual human spinal cords from the literature. Forces required to indent the surrogate cords to specified depths were measured to obtain values under static conditions. Importantly, to quantify surface properties in addition to mechanical properties normally considered, interfacial frictional forces were measured by pulling a needle out of each cord at a controlled rate. The measured forces were then compared to those obtained from rat spinal cords. Formaldehyde-crosslinked gelatin, 12 wt% in water, was identified as the most suitable material for the construction of surrogate spinal cords. To demonstrate the utility of surrogate spinal cords in evaluating the behavior of various electrode arrays, cords were implanted with two types of intraspinal electrode arrays (one made of individual microwires and another of microwires anchored with a solid base), and cord deformation under elongation was evaluated. The results demonstrate that the surrogate model simulates the mechanical and interfacial properties of the spinal cord, and enables in vitro screening of intraspinal implants.
  • Keywords
    biomechanics; biomedical electrodes; biomedical materials; deformation; elastic moduli; elongation; hydrogels; neurophysiology; prosthetics; deformation; dynamic mechanical analysis; elastic modulus; electrode array; elongation; formaldehyde crosslinked gelatin; gelatin hydrogels; human spinal cords; intraspinal implant; mechanical suitability; silicone elastomers; surrogate spinal cord; Electrodes; Force; Implants; Materials; Spinal cord; Strain; Testing; Functional electrical stimulation; gelatin; mechanical properties; silicone elastomers; spinal cord injury; Analysis of Variance; Animals; Biomechanical Phenomena; Elastic Modulus; Electric Stimulation; Electrodes; Female; Gelatin; Materials Testing; Neural Prostheses; Rats; Rats, Sprague-Dawley; Silicone Elastomers; Spinal Cord;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2013.2241061
  • Filename
    6418000