Title :
Biocompatible SU-8-Based Microprobes for Recording Neural Spike Signals From Regenerated Peripheral Nerve Fibers
Author :
Cho, Sung-Hoon ; Lu, Hong Meng ; Cauller, Lawrence ; Romero-Ortega, Mario I. ; Lee, Jeong-Bong ; Hughes, Gareth A.
Author_Institution :
Dept. of Electr. Eng., Univ. of Texas at Dallas, Richardson, TX
Abstract :
A biocompatible neural microprobe constructed using well-established SU-8 microfabrication techniques is described that was designed to record fiber spike signals from regenerated axons within peripheral nerves. These microprobes features bipolar longitudinal gold electrodes recessed below the surface within ldquogroovesrdquo designed to guide the growth of regenerating axons along the length of the grooves and limit the number of fibers that come in contact with the longitudinal electrodes. In addition, screening microprobe toxicity using cultures of human skin fibroblasts, the biocompatibility of these SU-8 microprobes for neural interface applications, in particular, was specifically verified using primary cultures of two sensitive cell types found in peripheral nerves: purified Schwann cells and explanted dorsal root ganglion (DRG) neurons and their fibers. The SU-8 microprobes were surgically implanted into transected rat Sciatic nerves within a unique peripheral nerve regeneration tube. Long-term fiber spike signals were recorded with these SU-8 microprobes in 13 chronically implanted rats for periods from 4 to 51 weeks without any signs of tissue damage or inflammatory reaction.
Keywords :
bioMEMS; bioelectric phenomena; biomedical electrodes; biomedical measurement; cellular biophysics; microelectrodes; neurophysiology; tissue engineering; biocompatible SU-8-based microprobes; bipolar longitudinal gold electrodes; dorsal root ganglion neurons; human skin fibroblast; inflammatory reaction; neural interface application; neural spike signal recording; purified Schwann cells; rat sciatic nerves; regenerated axons; regenerated peripheral nerve fibers; time 4 week to 51 week; tissue damage; Electrodes; Fibroblasts; Gold; Humans; Nerve fibers; Neural microtechnology; Neurons; Signal design; Skin; Surgery; Biocompatible; SU-8; microelectrode; neural probe; peripheral nerve;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2008.2006261