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三维多孔导管的血管预构建策略用于神经组织工程。

Prevascularization Strategy with Three-Dimensional Porous Conduits for Neural Tissue Engineering.

机构信息

Department of Orthopedic Surgery, Shanghai Jiao Tong University Affiliated Sixth People's Hospital, Yishan Road 600, Shanghai 200233, PR China.

Haikou Orthopedic and Diabetes Hospital of Shanghai Sixth People's Hospital, Hainan 570300, PR China.

出版信息

ACS Appl Mater Interfaces. 2021 Nov 3;13(43):50785-50801. doi: 10.1021/acsami.1c16138. Epub 2021 Oct 19.

Abstract

Neovascularization is crucial for peripheral nerve regeneration and long-term functional restoration. Previous studies have emphasized strategies that enhance axonal repair over vascularization. Here, we describe the development and application of an prevascularization strategy that uses 3D porous nerve guidance conduits (NGCs) to achieve angiogenesis-mediated neural regeneration. The optimal porosity of the NGC is a critical feature for achieving neovascularization and nerve growth patency. Hollow silk fibroin/poly(l-lactic acid--ε-caprolactone) NGCs with 3D sponge-like walls were fabricated using electrospinning and freeze-drying. results showed that 3D porous NGC favored cell biocompatibility had neuroregeneration potential and, most importantly, had angiogenic activity. Results from our mechanistic studies suggest that activation of HIF-1α signaling might be associated with this process. We also tested prevascularized 3D porous NGCs by transplanting them into a 10 mm rat sciatic nerve defect model with the aim of regenerating the severed nerve. The prevascularized 3D porous NGCs greatly enhanced intraneural angiogenesis, resulting in demonstrable neurogenesis. Eight weeks after transplantation, the performance of the prevascularized 3D NGCs was similar to that of traditional autografts in terms of improved anatomical structure, morphology, and neural function. In conclusion, combining a reasonably fabricated 3D-pore conduit structure with prevascularization promoted functional nerve regeneration, suggesting an alternative strategy for achieving functional recovery after peripheral nerve trauma.

摘要

血管新生对于周围神经再生和长期功能恢复至关重要。既往研究强调了增强轴突修复而非血管生成的策略。在这里,我们描述了一种血管预构策略的发展和应用,该策略使用 3D 多孔神经导管(NGC)实现血管生成介导的神经再生。NGC 的最佳孔隙率是实现血管新生和神经生长通畅性的关键特征。使用静电纺丝和冷冻干燥技术制备了具有 3D 海绵状壁的中空丝素/聚(L-丙交酯-ε-己内酯)NGC。结果表明,3D 多孔 NGC 有利于细胞相容性,具有神经再生潜力,最重要的是具有血管生成活性。我们的机制研究结果表明,HIF-1α 信号的激活可能与这一过程有关。我们还通过将其移植到 10mm 大鼠坐骨神经缺损模型中来测试预血管化的 3D 多孔 NGC,以再生切断的神经。预血管化的 3D 多孔 NGC 极大地促进了神经内血管生成,从而产生了明显的神经发生。移植 8 周后,预血管化 3D NGC 的性能在改善解剖结构、形态和神经功能方面与传统自体移植物相似。总之,将合理构建的 3D 孔道结构与血管预构相结合,促进了功能性神经再生,为周围神经损伤后实现功能恢复提供了一种替代策略。

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