Engineering the ABIO-BIO interface of neurostimulation electrodes using polypyrrole and bioactive hydrogels

Author:

Bhat Ankita1ORCID,Graham Alexa R.1ORCID,Trivedi Hemang2ORCID,Hogan Matthew K.2ORCID,Horner Philip J.2ORCID,Guiseppi-Elie Anthony1234ORCID

Affiliation:

1. Center for Bioelectronics, Biosensors and Biochips (C3B), Department of Biomedical Engineering , Texas A&M University , College Station, TX 77843 , USA

2. Houston Methodist Institute for Academic Medicine and Houston Methodist Research Institute , 6670 Bertner Ave. , Houston, TX 77030 , USA

3. Department of Electrical and Computer Engineering , Texas A&M University , College Station, TX 77843 , USA

4. ABTECH Scientific, Inc., Biotechnology Research Park , 800 East Leigh Street , Richmond, VA 23219 , USA , Tel.: +1(979) 458 1239, Fax: +1(979) 845 4450

Abstract

Abstract Following spinal cord injury, the use of electrodes for neurostimulation in animal models has been shown to stimulate muscle movement, however, the efficacy of such treatment is impaired by increased interfacial impedance caused by fibrous encapsulation of the electrode. Sputter-deposited gold-on-polyimide electrodes were modified by potentiostatic electrodeposition of poly(pyrrole-co-3-pyrrolylbutyrate-conj-aminoethylmethacrylate): sulfopropyl methacrylate [P(Py-co-PyBA-conj-AEMA):SPMA] to various charge densities (0–100 mC/cm2) to address interfacial impedance and coated with a phosphoryl choline containing bioactive hydrogel to address biocompatibility at the ABIO-BIO interface. Electrodes were characterized with scanning electron microscopy (surface morphology), multiple-scan rate cyclic voltammetry (peak current and electroactive area), and electrochemical impedance spectroscopy (charge transfer resistance and membrane resistance). SEM analysis and electroactive area calculations identified films fabricated with a charge density of 50 mC/cm2 as well suited for neurostimulation electrodes. Charge transfer resistance demonstrated a strong inverse correlation (−0.83) with charge density of electrodeposition. On average, the addition of polypyrrole and hydrogel to neurostimulation electrodes decreased charge transfer resistance by 82 %. These results support the use of interfacial engineering techniques to mitigate high interfacial impedance and combat the foreign body response towards epidurally implanted neurostimulation electrodes.

Publisher

Walter de Gruyter GmbH

Subject

General Chemical Engineering,General Chemistry

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