• DocumentCode
    1401123
  • Title

    Designing Tyrosine-Derived Polycarbonate Polymers for Biodegradable Regenerative Type Neural Interface Capable of Neural Recording

  • Author

    Lewitus, Dan ; Vogelstein, R. Jacob ; Zhen, Gehua ; Choi, Young-Seok ; Kohn, Joachim ; Harshbarger, Stuart ; Jia, Xiaofeng

  • Author_Institution
    New Jersey Center for Biomater., Rutgers, State Univ. of New Jersey, Piscataway, NJ, USA
  • Volume
    19
  • Issue
    2
  • fYear
    2011
  • fDate
    4/1/2011 12:00:00 AM
  • Firstpage
    204
  • Lastpage
    212
  • Abstract
    Next-generation neuroprosthetic limbs will require a reliable long-term neural interface to residual nerves in the peripheral nervous system (PNS). To this end, we have developed novel biocompatible materials and a fabrication technique to create high site-count microelectrodes for stimulating and recording from regenerated peripheral nerves. Our electrodes are based on a biodegradable tyrosine-derived polycarbonate polymer system with suitable degradation and erosion properties and a fabrication technique for deployment of the polymer in a porous, degradable, regenerative, multiluminal, multielectrode conduit. The in vitro properties of the polymer and the electrode were tuned to retain mechanical strength for over 24 days and to completely degrade and erode within 220 days. The fabrication technique resulted in a multiluminal conduit with at least 10 functioning electrodes maintaining recording site impedance in the single-digit kOhm range. Additionally, in vivo results showed that neural signals could be recorded from these devices starting at four weeks postimplantation and that signal strength increased over time. We conclude that our biodegradable regenerative-type neural interface is a good candidate for chronic high fidelity recording electrodes for integration with regenerated peripheral nerves.
  • Keywords
    bioelectric potentials; biomedical electrodes; biomedical materials; microelectrodes; neurophysiology; polymers; biocompatible materials; biodegradable regenerative neural interface; degradable conduit; degradation properties; erosion properties; fabrication technique; high site count microelectrodes; long term neural interface; multielectrode conduit; multiluminal conduit; neural recording; next generation neuroprosthetic limbs; peripheral nervous system; polymer in vitro properties; porous conduit; regenerated peripheral nerve stimulation; regenerative conduit; residual nerves; tyrosine derived polycarbonate polymers; Electrodes; Fabrication; Films; Impedance; Plastics; Temperature measurement; Wires; Biodegradable; electrode; interface; neuroprosthetics; peripheral nerve; regenerative; Absorbable Implants; Animals; Biocompatible Materials; Electric Impedance; Electrodes, Implanted; Electrophysiology; Mechanical Processes; Microelectrodes; Molecular Weight; Neurophysiology; Polycarboxylate Cement; Polymers; Prostheses and Implants; Prosthesis Design; Rabbits; Signal Processing, Computer-Assisted; Tyrosine;
  • fLanguage
    English
  • Journal_Title
    Neural Systems and Rehabilitation Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1534-4320
  • Type

    jour

  • DOI
    10.1109/TNSRE.2010.2098047
  • Filename
    5664798