分子生物学
IVD分子诊断
细胞培养与分析
蛋白研究
细胞因子
重组蛋白
抗体
高通量测序建库
病原检测UCF系列
生物医药
工具酶
抑制剂激活剂与常用试剂
仪器
耗材

Eel-Inspired Self-Powered Hydrogel Nerve Conduit: A Fully Degradable Scaffold for Peripheral Nerve Repair

Lingshun Sun, Weixing Wang, Haifei Kang, Yingxin Xu, Peiyuan Luo, Xinyue Liang, Wenying Wei, Xiaopei Wu, Aixi Yu, Honglian Dai

Journal:ADVANCED MATERIALS

IF:26.8

DOI:10.1002/adma.202516645

PMID:

Published:2026-04-09

research field:神经组织工程生物材料生物医学工程再生医学生物电子学

Abstract

Electrical stimulation effectively promotes nerve regeneration and functional recovery, but its clinical application faces challenges such as energy supply limitations, long-term stability issues, and implantation safety concerns. Inspired by the bioelectrogenic mechanism of electric eels, this study developed an electric-eel-inspired ionogel battery (EE-iHB) using chitosan (CS), chondroitin sulfate (CSA), and hydroxyethyl cellulose (HEC). The battery exhibits not only excellent biocompatibility but also outstanding ionic conductivity. By mimicking the intricate multilayer structure of electric eel electrocytes and employing a layer-by-layer self-assembly technique, synergistic optimization of mechanical properties and electrical conductivity was achieved in the nerve conduit. In vitro experiments confirmed the stable and continuous generation of bioelectrical signals. In vivo studies using a rat sciatic nerve injury model demonstrated that the experimental group implanted with this novel conduit showed superior nerve regeneration speed and functional recovery compared to conventional nerve conduits. Histological and electrophysiological analyses further verified that the weak current generated by the battery effectively activation of Schwann cells, guides orderly axonal growth, and promotes myelination. The use of flexible gel materials ensures seamless integration with neural tissues, guaranteeing both safety and long-term reliability in neural repair applications.

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