Department of Orthopedic Surgery, Shanghai Jiao Tong University Affiliated Sixth People's Hospital, Shanghai 200233, China.
College of Materials and Textile Engineering, Jiaxing University, Zhejiang 314001, China.
Acta Biomater. 2019 Jan 1;83:291-301. doi: 10.1016/j.actbio.2018.10.040. Epub 2018 Oct 27.
Topographical cues presented by aligned nanofibers have been demonstrated to stimulate peripheral nerve regeneration across long gaps, but the underlying mechanisms remain incompletely elucidated. Because macrophages play a crucial role in peripheral nerve regeneration and can be phenotypically modulated by topographical cues, we hypothesized that aligned nanofibers might induce the development of macrophage phenotypes that facilitate the regeneration of peripheral nerves. Here, macrophages were seeded on aligned and random poly(l-lactic acid-co-ε-caprolactone) nanofibers and their morphology and phenotypes were compared. Aligned nanofibers drastically stimulated macrophage elongation along the nanofibers, and, more importantly, induced the development of a pro-healing macrophage phenotype (M2 type), whereas random nanofibers induced a proinflammatory phenotype (M1 type). Notably, the macrophages polarized by aligned nanofibers potently promoted the proliferation and migration of Schwann cells in vitro. Thus, we constructed nerve-guidance conduits by using aligned and random nanofibers and evaluated their effects on macrophage polarization and nerve regeneration in a rat sciatic nerve defect model. Our in vivo results showed that the ratio of pro-healing macrophages was again higher in the aligned-nanofiber group, and further that Schwann cell infiltration and axon numbers were 2.0- and 2.84-fold higher in the aligned group than in the random group, respectively. This study demonstrates that nanofiber arrangement differentially regulates macrophage activation and that nerve-guidance conduits constructed from aligned nanofibers markedly facilitate peripheral nerve regeneration at least partly by promoting the pro-healing phenotype in macrophages. STATEMENT OF SIGNIFICANCE: The effect of aligned nanofibers on peripheral nerve regeneration has been well established. However, the underlying mechanism remains unclear. Since macrophages play an important role in peripheral nerve regeneration, and can be phenotypically modulated by topographical cues, we hypothesized that aligned nanofibers may exert their beneficial effects via modulating macrophage phenotypes. This study demonstrates for the first time that nanofiber arrangement differentially modulates macrophage shape and polarization, and this subsequently influences the outcome of peripheral nerve regeneration. These findings reveals a novel relationship between biomaterial structure and macrophage activation, contributes to clarifying the mechanism of surface topography in tissue regeneration, and highlight the potential application prospect of aligned nanofiber scaffolds in nerve regeneration and wound healing.
取向纳米纤维提供的地形线索已被证明可以刺激长间隙处周围神经的再生,但潜在机制仍不完全清楚。由于巨噬细胞在外周神经再生中起关键作用,并且可以通过形貌线索表型调节,我们假设取向纳米纤维可能诱导巨噬细胞表型的发展,从而促进周围神经的再生。在这里,将巨噬细胞接种在取向和随机聚(L-丙交酯-共-ε-己内酯)纳米纤维上,并比较它们的形态和表型。取向纳米纤维极大地刺激了巨噬细胞沿着纳米纤维的伸长,更重要的是,诱导了一种促进愈合的巨噬细胞表型(M2 型)的发展,而随机纳米纤维则诱导了一种促炎表型(M1 型)。值得注意的是,经取向纳米纤维极化的巨噬细胞在体外有力地促进了施万细胞的增殖和迁移。因此,我们构建了由取向和随机纳米纤维组成的神经引导导管,并在大鼠坐骨神经缺损模型中评估了它们对巨噬细胞极化和神经再生的影响。我们的体内结果表明,在取向纳米纤维组中,促进愈合的巨噬细胞的比例再次更高,并且在取向组中,施万细胞浸润和轴突数量分别比随机组高 2.0 倍和 2.84 倍。这项研究表明,纳米纤维排列可差异调节巨噬细胞的激活,并且由取向纳米纤维构建的神经引导导管通过促进巨噬细胞中的促愈合表型,可显著促进周围神经再生。
取向纳米纤维对外周神经再生的影响已得到充分证实。然而,潜在的机制仍不清楚。由于巨噬细胞在外周神经再生中起着重要作用,并且可以通过形貌线索表型调节,我们假设取向纳米纤维可能通过调节巨噬细胞表型来发挥其有益作用。这项研究首次证明,纳米纤维排列可差异调节巨噬细胞的形状和极化,进而影响周围神经再生的结果。这些发现揭示了生物材料结构与巨噬细胞激活之间的新关系,有助于阐明表面形貌在组织再生中的作用机制,并突出了取向纳米纤维支架在外周神经再生和伤口愈合中的潜在应用前景。