College of Life Sciences, Key Laboratory of Bioactive Materials (Ministry of Education), State Key Laboratory of Medicinal Chemical Biology, Nankai University, Tianjin, 300071, China.
First Teaching Hospital of Tianjin University of Traditional Chinese Medicine, Tianjin, 300193, China.
Biomaterials. 2021 May;272:120767. doi: 10.1016/j.biomaterials.2021.120767. Epub 2021 Mar 27.
Mechanistic understanding of the topological cues delivered by biomaterials in promotion of oriented tissue regeneration (e.g., peripheral nerve regrowth) remains largely elusive. Here, we engineered nerve conduits composed of oriented microfiber-bundle cores and randomly organized nanofiber sheaths to particularly interrogate the regulatory mechanism of microfiber orientation on promoted peripheral nerve regeneration. With comprehensive yet systematic analyses, we were able to elucidate the intricate cascade of biological responses associated with conduit-assisted nerve regrowth, i.e., oriented microfibers facilitated macrophage recruitment and subsequent polarization toward a pro-healing phenotype, which in turn promoted Schwann cell (SC) migration, myelinization and axonal extension. Pronounced improvement of nerve regeneration in rat sciatic nerve injury was evidenced with enhanced electrophysiologic function, sciatic functional index and alleviated muscle atrophy 3 months post-implantation. The obtained results offer essential insights on the topological regulation of biomaterials in functional nerve tissue regeneration via immune modulation.
生物材料提供的拓扑线索在促进组织定向再生(例如周围神经再生)方面的作用机制在很大程度上仍难以捉摸。在这里,我们设计了由定向微纤维束芯和随机组织纳米纤维鞘组成的神经导管,特别研究了微纤维取向对促进周围神经再生的调控机制。通过全面而系统的分析,我们能够阐明与导管辅助神经再生相关的复杂级联生物反应,即定向微纤维促进巨噬细胞募集,并随后向有利于修复的表型极化,进而促进施万细胞 (SC) 的迁移、髓鞘形成和轴突延伸。通过植入后 3 个月增强的电生理功能、坐骨神经功能指数和减轻的肌肉萎缩,证明了大鼠坐骨神经损伤中的神经再生有明显改善。这些结果为通过免疫调节实现功能性神经组织再生中生物材料的拓扑调控提供了重要的见解。