自愈水凝胶
再生(生物学)
材料科学
稳健性(进化)
周围神经
导电体
纳米技术
几何学
复合材料
化学
解剖
高分子化学
医学
数学
生物
细胞生物学
基因
生物化学
作者
Yinghui Feng,Liangjie Shan,Yafei Wang,Xingmei Chen,Changjiang Wang,Ji Liu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-04-24
标识
DOI:10.1021/acsnano.5c00845
摘要
Nerve guidance conduits (NGCs) emerge as a promising solution for nerve regeneration; however, conventional NGCs fail to fulfill the requirements for peripheral nerve regeneration, which are subjected to periodical yet vigorous stretching, bending, and compression. Here, we developed a fatigue-resistant conductive hydrogel-based NGC by integrating topographical geometry, enhanced electroactivity, and superior fatigue resistance within one unit. The hydrogel, consisting of a PVA matrix with PEDOT:PSS as a conductive filler, features a topographical alignment that promotes axonal growth and achieves a fatigue threshold over 500 J/m2, making it well-suited for sciatic nerve repairing. Phase segregation of PEDOT chains enhances its electrical conductivity (>500 S/m) and mitigates the interfacial impedance mismatch, allowing for high-efficiency bioelectrical signal transmission. In vivo studies on a rat sciatic nerve injury model corroborate the accelerated peripheral nerve regeneration through improved motor function recovery and efficient electrophysiological signal transmission. These findings establish our hydrogel-based NGCs as a promising solution for high-efficiency nerve regeneration through the synergy of topographical, mechanical, and electrical engineering.
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