State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.
Department of Orthopedics, PLA General Hospital, FuXing Road 28th, Beijing 100853, China.
Acta Biomater. 2017 Jun;55:296-309. doi: 10.1016/j.actbio.2017.04.010. Epub 2017 Apr 12.
Fibrin plays a crucial role in peripheral nerve regeneration, which could occur spontaneously in the format of longitudinally oriented fibrin cables during the initial stage of nerve regeneration. This fibrin cable can direct migration and proliferation of Schwann cells and axonal regrowth, which is very important to nerve regeneration. In the present study, we prepared a three-dimensional hierarchically aligned fibrin nanofiber hydrogel (AFG) through electrospinning and molecular self-assembly to resemble the architecture and biological function of the native fibrin cable. The AFG displayed a hierarchically aligned topography as well as low elasticity (∼1.5kPa) that were similar to nerve extracellular matrix (ECM) and the native fibrin cable. Rapid, directional cell adhesion and migration of Schwann cells (SCs) and dorsal root ganglions were observed in vitro. The AFG was then used as a potential intraluminal substrate in a bioengineered chitosan tube to bridge a 10-mm-long sciatic nerve gap in rats. We found that the AFG served as a beneficial microenvironment to support SCs cable formation and axonal regrowth within 2weeks. Further histological and morphological analyses as well as electrophysiological and functional examinations were performed after AFG implantation for up to 12weeks. The results from morphological analysis and electrophysiological examination indicated that regenerative outcomes achieved by our developed graft were close to those by an autologous nerve graft, but superior to those by hollow chitosan tubes (hCST) and random fibrin nanofiber hydrogel (RFG). Our results demonstrate that the AFG creates an instructive microenvironment by mimicking the native fibrin cable as well as the oriented and soft features of nerve ECM to accelerate axonal regrowth, thus showing great promising potential for applications in neural regeneration.
In peripheral nervous system defect repair, a wide variety of strategies have been proposed for preparing functionalized nerve guidance conduits (NGC) with more complex configurations to obtain optimal repair effects. Longitudinally oriented fibrin cables were reported to form spontaneously during the initial stages of peripheral nerve regeneration in an empty NGC, which can direct the migration and proliferation of Schwann cells and promote axonal regrowth. Therefore, based on the biomimetic idea, we prepared a three-dimensional hierarchically aligned fibrin nanofiber hydrogel (AFG) through electrospinning and molecular self-assembly, resembling the architecture and biological function of the native fibrin cable and serving as an intraluminal filling to accelerate axon regeneration. We found that the AFG was a beneficial microenvironment to support SCs cable formation and accelerate axonal regrowth with improved motor functional recovery.
纤维蛋白在周围神经再生中起着至关重要的作用,在神经再生的初始阶段,纤维蛋白可以自发形成纵向排列的纤维蛋白索。这种纤维蛋白索可以引导雪旺细胞的迁移和增殖以及轴突的再生,这对神经再生非常重要。在本研究中,我们通过静电纺丝和分子自组装制备了一种具有三维层次排列的纤维蛋白纳米纤维水凝胶(AFG),以模拟天然纤维蛋白索的结构和生物学功能。AFG 呈现出分层排列的形貌和较低的弹性(约 1.5kPa),类似于神经细胞外基质(ECM)和天然纤维蛋白索。体外观察到雪旺细胞(SCs)和背根神经节的快速、定向细胞黏附和迁移。然后,将 AFG 用作生物工程壳聚糖管内的潜在腔内基质,以桥接大鼠 10mm 长的坐骨神经间隙。我们发现,AFG 作为一种有益的微环境,可在 2 周内支持 SCs 纤维蛋白索的形成和轴突的再生。在 AFG 植入后长达 12 周进行进一步的组织学和形态学分析以及电生理学和功能检查。形态学分析和电生理学检查的结果表明,我们开发的移植物的再生结果接近自体神经移植物,但优于中空壳聚糖管(hCST)和随机纤维蛋白纳米纤维水凝胶(RFG)。我们的结果表明,AFG 通过模拟天然纤维蛋白索以及神经 ECM 的定向和柔软特征来创造一个有指导意义的微环境,从而加速轴突再生,因此在神经再生应用中具有很大的潜力。