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形状保持型导电神经引导管促进周围神经再生。

Shape-Persistent Conductive Nerve Guidance Conduits for Peripheral Nerve Regeneration.

机构信息

State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine, College of Biological Science and Medical Engineering, Donghua University, Shanghai, 201620, P. R. China.

Department of Sports Medicine, Shanghai General Hospital Affiliated to Shanghai Jiao Tong University, Shanghai, 200080, P. R. China.

出版信息

Adv Healthc Mater. 2024 Oct;13(26):e2401160. doi: 10.1002/adhm.202401160. Epub 2024 May 23.

Abstract

To solve the problems of slow regeneration and mismatch of axon regeneration after peripheral nerve injury, nerve guidance conduits (NGCs) have been widely used to promote nerve regeneration. Multichannel NGCs have been widely studied to mimic the structure of natural nerve bundles. However, multichannel conduits are prone to structural instability. Thermo-responsive shape memory polymers (SMPs) can maintain a persistent initial structure over the body temperature range. Electrical stimulation (ES), utilized within nerve NGCs, serves as a biological signal to expedite damaged nerve regeneration. Here, an electrospun shape-persistent conductive NGC is designed to maintain the persistent tubular structure in the physiological temperature range and improve the conductivity. The physicochemical and biocompatibility of these P, P/G, P/G-GO, and P/G-RGO NGCs are conducted in vitro. Meanwhile, to evaluate biocompatibility and peripheral nerve regeneration, NGCs are implanted in subcutaneous parts of the back of rats and sciatic nerves assessed by histology and immunofluorescence analyses. The conductive NGC displays a stable structure, good biocompatibility, and promoted nerve regeneration. Collectively, the shape-persistent conductive NGC (P/G-RGO) is expected to promote peripheral nerve recovery, especially for long-gap and large-diameter nerves.

摘要

为了解决外周神经损伤后轴突再生缓慢和不匹配的问题,神经引导导管(NGC)已被广泛用于促进神经再生。多通道 NGC 已被广泛研究以模拟天然神经束的结构。然而,多通道导管容易出现结构不稳定。热响应形状记忆聚合物(SMP)可以在体温范围内保持持久的初始结构。电刺激(ES)在神经 NGC 中使用,作为一种生物信号来加速受损神经的再生。在这里,设计了一种电纺形状保持导电 NGC,以在生理温度范围内保持持久的管状结构并提高导电性。对这些 P、P/G、P/G-GO 和 P/G-RGO NGC 的理化性质和生物相容性进行了体外研究。同时,为了评估生物相容性和周围神经再生,将 NGC 植入大鼠背部皮下部位,并通过组织学和免疫荧光分析评估坐骨神经。导电 NGC 显示出稳定的结构、良好的生物相容性和促进神经再生的特性。总之,形状保持导电 NGC(P/G-RGO)有望促进周围神经的恢复,特别是对于长间隙和大直径的神经。

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