自愈水凝胶
材料科学
丝素
再生(生物学)
成纤维细胞
组织工程
生物物理学
坐骨神经
周围神经损伤
细胞外基质
轴突
纳米技术
生物医学工程
细胞生物学
丝绸
化学
解剖
医学
高分子化学
生物
生物化学
复合材料
体外
作者
Yisheng Gao,Chaolun Dai,Miao Zhang,Jianye Zhang,Long Yin,Wanhua Li,Kunyu Zhang,Yumin Yang,Yahong Zhao
标识
DOI:10.1002/adfm.202314610
摘要
Abstract Peripheral nerve injury represents a critical clinical challenge. Employing tissue engineering, biomimetic scaffolds mimicking the biophysical and biochemical cues of the native extracellular matrix have shown promise. Specifically, conductive matrices, mirroring neural tissue's electrical properties, hold potential for neural tissue repair. However, the synergistic impact of conductivity and biomolecules on injured peripheral nerves remains unexplored. In this study, conductive hydrogels via a three‐step click chemical reaction method, incorporating silk fibroin, graphene oxide, and Polyethylene Glycol Diacrylate is crafted. The inclusion of fibroblast exosomes yielded a synergistic effect, enhancing recovery from peripheral nerve injuries. Graphene oxide heightened the electron transmission capacity of the hydrogels, while fibroblast exosomes endowed them with the ability to modulate cellular behaviors. This resulted in enhanced axon and myelin regeneration. Furthermore, the hydrogel facilitated vascular regeneration during peripheral nerve recovery through the VEGF/NOTCH signaling pathway. Transplanting conductive hydrogel conduits laden with fibroblast exosomes led to substantial functional recovery in a rat sciatic nerve transection model. Consequently, a novel strategy to expedite the intricate repair of peripheral nerve injuries is proposed.
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