神经导管
再生(生物学)
坐骨神经
周围神经损伤
氧化应激
化学
生物物理学
周围神经
坐骨神经损伤
生物医学工程
神经损伤
电气导管
体外
组织工程
材料科学
再生医学
明胶
刺激
纳米技术
细胞生物学
膜
运动神经
生物相容性材料
活性氧
蛋壳膜
外周神经系统
外围设备
解剖
作者
Dong Zhou,Mengxuan Bian,Lingyu Wei,Binghuang Yao,Qi Chen,Lan Xiao,Jing He,Jian Zhang,Yulin Li,Libo Jiang
标识
DOI:10.1002/advs.202516124
摘要
Peripheral nerve injury (PNI) poses significant challenges due to the complex structure and regenerative microenvironment of peripheral nerves, which limit self-repair capabilities. Artificial nerve conduits have been widely used for nerve repair. Here, a conductive-piezoelectric integrated microstructured conduit is designed, using poly(lactic glycolic acid) (PLGA) and poly(vinylidene fluoride) (PVDF) via electrostatic spinning to obtain an implantable, biodegradable piezoelectric nanofibrous membrane. This membrane is further enhanced with a reduced graphene oxide/methacrylated gelatin (rGO/GelMA) gel, which synergistically promotes peripheral nerve repair. In vitro assessments reveal that the microgroove surface pattern of the conduit effectively stimulated the directional migration of cells. Moreover, using a rat sciatic nerve injury model, rGO is demonstrated to significantly modulate cellular oxidative stress, thereby facilitating nerve repair. Additionally, mild electrical stimulation induced by low-intensity pulsed ultrasound (LIPUS) is found to enhance the recovery of motor function. These findings demonstrate the multifaceted benefits of the rGO/GelMA@PVGA composite conduit, which integrates physical guidance, oxidative stress inhibition, and ultrasound-activated electrical stimulation, providing an unprecedented multimodal synergistic strategy with great potential for clinical treatment of peripheral nerve injury.
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