• DocumentCode
    1408010
  • Title

    Normal Molecular Repair Mechanisms in Regenerative Peripheral Nerve Interfaces Allow Recording of Early Spike Activity Despite Immature Myelination

  • Author

    Seifert, Jennifer L. ; Desai, Vidhi ; Watson, Robert C. ; Musa, Tabassum ; Kim, Young-tae ; Keefer, Edward W. ; Romero, Mario I.

  • Author_Institution
    Univ. of Texas at Arlington, Arlington, TX, USA
  • Volume
    20
  • Issue
    2
  • fYear
    2012
  • fDate
    3/1/2012 12:00:00 AM
  • Firstpage
    220
  • Lastpage
    227
  • Abstract
    Clinical use of neurally controlled prosthetics has advanced in recent years, but limitations still remain, including lacking fine motor control and sensory feedback. Indwelling multi-electrode arrays, cuff electrodes, and regenerative sieve electrodes have been reported to serve as peripheral neural interfaces, though long-term stability of the nerve-electrode interface has remained a formidable challenge. We recently developed a regenerative multi-electrode interface (REMI) that is able to record neural activity as early as seven days post-implantation. While this activity might represent normal neural depolarization during axonal regrowth, it can also be the result of altered nerve regeneration around the REMI. This study evaluated high-throughput expression levels of 84 genes involved in nerve injury and repair, and the histological changes that occur in parallel to this early neural activity. Animals exhibiting spike activity increased from 29% to 57% from 7 to 14 days following REMI implantation with a corresponding increase in firing rate of 113%. Two weeks after implantation, numbers of neurofilament-positive axons in the control and REMI implanted nerves were comparable, and in both cases the number of myelinated axons was low. During this time, expression levels of genes related to nerve injury and repair were similar in regenerated nerves, both in the presence or absence of the electrode array. Together, these results indicate that the early neural activity is intrinsic to the regenerating axons, and not induced by the REMI neurointerface.
  • Keywords
    bioelectric phenomena; biomedical electrodes; genetics; medical control systems; molecular biophysics; neurophysiology; prosthetics; REMI; axonal regrowth; cuff electrodes; gene expression; histological changes; immature myelination; implantation; long-term stability; motor control; multielectrode arrays; myelinated axons; nerve injury; nerve regeneration; nerve repair; neural firing; neurally controlled prosthetics; neurofilament-positive axons; normal molecular repair mechanisms; normal neural depolarization; regenerative multielectrode interface; regenerative peripheral nerve interfaces; regenerative sieve electrodes; sensory feedback; spike activity; time 7 day to 14 day; Animals; Electrodes; Electron tubes; Injuries; Maintenance engineering; Nerve fibers; USA Councils; Multi-electrode arrays; PCR microarrays; myelin; nerve regeneration; neural recording; peripheral nerve interfacing; Animals; Axons; Electrodes, Implanted; Electrophysiological Processes; Female; Gene Expression; Myelin Sheath; Nerve Regeneration; Neurofilament Proteins; Peripheral Nerves; RNA; Rats; Rats, Inbred Lew; Real-Time Polymerase Chain Reaction; Sciatic Nerve; User-Computer Interface; Wound Healing;
  • fLanguage
    English
  • Journal_Title
    Neural Systems and Rehabilitation Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1534-4320
  • Type

    jour

  • DOI
    10.1109/TNSRE.2011.2179811
  • Filename
    6112239