Large enhancement in neurite outgrowth on a cell membrane-mimicking conducting polymer

Although electrically stimulated neurite outgrowth on bioelectronic devices is a promising means of nerve regeneration, immunogenic scar formation can insulate electrodes from targeted cells and tissues, thereby reducing the lifetime of the device. Ideally, an electrode material capable of electrica...

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Veröffentlicht in:Nature communications 2014-07, Vol.5 (1), p.4523-4523
Hauptverfasser: Zhu, Bo, Luo, Shyh-Chyang, Zhao, Haichao, Lin, Hsing-An, Sekine, Jun, Nakao, Aiko, Chen, Chi, Yamashita, Yoshiro, Yu, Hsiao-hua
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Sprache:eng
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Zusammenfassung:Although electrically stimulated neurite outgrowth on bioelectronic devices is a promising means of nerve regeneration, immunogenic scar formation can insulate electrodes from targeted cells and tissues, thereby reducing the lifetime of the device. Ideally, an electrode material capable of electrically interfacing with neurons selectively and efficiently would be integrated without being recognized by the immune system and minimize its response. Here we develop a cell membrane-mimicking conducting polymer possessing several attractive features. This polymer displays high resistance towards nonspecific enzyme/cell binding and recognizes targeted cells specifically to allow intimate electrical communication over long periods of time. Its low electrical impedance relays electrical signals efficiently. This material is capable to integrate biochemical and electrical stimulation to promote neural cellular behaviour. Neurite outgrowth is enhanced greatly on this new conducting polymer; in addition, electrically stimulated secretion of proteins from primary Schwann cells can also occur on it. Bioelectronic devices for cell electrical stimulation and nerve regeneration can be hampered by nonspecific binding of proteins and cells. Here, the authors present a membrane biomimetic conducting polymer that is cell selective, and thus may be useful in neural tissue engineering.
ISSN:2041-1723
DOI:10.1038/ncomms5523