
AbstractAdvanced artificial nerve conduits offer a promising alternative for nerve injury repair. Current research focuses on improving the therapeutic effectiveness of nerve conduits by optimizing scaffold materials and functional components. In this study, a novel poly(3,4‐ethylenedioxythiophene) (PEDOT)‐integrated fish swim bladder (FSB) is presented as a conductive nerve conduit with ordered topology and electrical stimulation to promote nerve regeneration. PEDOT nanomaterials and adhesive peptides (IKVAV) are successfully incorporated onto the decellularized FSB substrate through pre‐coating with polydopamine. The obtained PEDOT/IKVAV‐integrated FSB substrate exhibits outstanding mechanical properties, high electrical conductivity, stability, as well as excellent biocompatibility and bioadhesive properties. In vitro studies confirm that the PEDOT/IKVAV‐integrated FSB can effectively facilitate the growth and directional extension of pheochromocytoma 12 cells and dorsal root ganglion neurites. In addition, in vivo experiments demonstrate that the proposed PEDOT/IKVAV‐integrated FSB conduit can accelerate defective nerve repair and functional restoration. The findings indicate that the FSB‐derived conductive nerve conduits with multiple regenerative inducing signals integration provide a conducive milieu for nerve regeneration, exhibiting great potential for repairing long‐segment neural defects.
Tissue Scaffolds, Air Sacs, Polymers, Science, Q, Fishes, Electric Conductivity, Biocompatible Materials, Bridged Bicyclo Compounds, Heterocyclic, Nerve Regeneration, topography, nerve conduit, Animals, conductivity, nerve regeneration, fish swim bladder, PEDOT, Research Article
Tissue Scaffolds, Air Sacs, Polymers, Science, Q, Fishes, Electric Conductivity, Biocompatible Materials, Bridged Bicyclo Compounds, Heterocyclic, Nerve Regeneration, topography, nerve conduit, Animals, conductivity, nerve regeneration, fish swim bladder, PEDOT, Research Article
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