Frontier Institute of Science and Technology, State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an 710049, PR China.
Department of Anatomy, Guangdong Engineering Research Center for Translation of Medical 3D Printing Application, School of Basic Medical Sciences, Southern Medical University, Guangzhou 510515, PR China.
Acta Biomater. 2019 Sep 15;96:175-187. doi: 10.1016/j.actbio.2019.06.035. Epub 2019 Jun 29.
Aligned topographical cue has been demonstrated as a critical role in neuronal guidance, and it is highly beneficial to develop a scaffold with aligned structure for peripheral nerve tissue regeneration. Although considerable efforts have been devoted to guiding neurite alignment and extension, it remains a remarkable challenge for developing a biomimetic scaffold for enhancing 3D aligned neuronal outgrowth. Herein, we present a core-shell scaffold based on aligned conductive nanofiber yarns (NFYs) within the hydrogel to mimic the 3D hierarchically aligned structure of the native nerve tissue. The aligned NFYs assembled by a bundle of aligned nanofibers composed of polycaprolactone (PCL), silk fibroin (SF), and carbon nanotubes (CNTs) are prepared by a developed dry-wet electrospinning method, which has the ability to induce neurite alignment and elongation when PC12 cells and dorsal root ganglia (DRG) cells are cultured on their 3D peripheral surface. Particularly, such an aligned nanofibrous structure also induces aligned neurite extension and cell migration from DRG explants along the direction of nanofibers. 3D core-shell scaffolds are fabricated by encapsulating NFYs within the hydrogel shell after photocrosslinking, and these 3D aligned scaffolds are able to control cellular alignment and elongation of nerve cells in this 3D environment. Our results suggest that such 3D hierarchically aligned core-shell scaffold consists of NFYs that mimic the aligned nerve fiber structure to induce neurite alignment and extension and a hydrogel shell that mimics the epineurium layer to protect nerve cell organization within a 3D environment, which is largely promising for the design of biomimetic scaffolds in nerve tissue engineering. STATEMENT OF SIGNIFICANCE: Designing scaffolds with 3D aligned structure has been paid more attention for peripheral nerve tissue regeneration, because the aligned topographical cue is able to induce neurites alignment and extension. However, developing scaffolds mimicking the hierarchically aligned structure of native nerve tissue for directing 3D aligned neuronal outgrowth without external stimulation remains challenging. This work presented a simple and efficient strategy to prepare a 3D biomimetic core-shell scaffold based on electrospun aligned conductive nanofiber yarns within photocurable hydrogel shell to mimic the hierarchically aligned structure of native nerve tissue. These 3D aligned composite scaffolds performed the ability to direct 3D cellular alignment and elongation of nerve cells along with the nanofiber yarn direction, and the hydrogel shell mimicking the epineurium layer was able to protect nerve cells organization within the 3D environment, which indicated their great potential in peripheral nerve tissue engineering applications.
取向的地形线索已被证明在神经元导向中起着关键作用,因此开发具有取向结构的支架来促进周围神经组织再生是非常有益的。尽管已经投入了相当大的努力来引导神经突的取向和延伸,但开发用于增强 3D 取向神经元生长的仿生支架仍然是一个巨大的挑战。在此,我们提出了一种基于水凝胶内取向导电纳米纤维纱线(NFY)的核壳支架,以模拟天然神经组织的 3D 分级取向结构。通过开发的干湿静电纺丝方法制备了由聚己内酯(PCL)、丝素(SF)和碳纳米管(CNT)组成的取向纳米纤维束组装的取向 NFY,当 PC12 细胞和背根神经节(DRG)细胞在其 3D 外周表面上培养时,具有诱导神经突取向和伸长的能力。特别是,这种取向的纳米纤维结构还可以诱导 DRG 外植体中的神经突沿着纳米纤维的方向进行取向延伸和细胞迁移。通过光交联将 NFY 封装在水凝胶壳内来制备 3D 核壳支架,这些 3D 取向支架能够在这种 3D 环境中控制神经细胞的取向和伸长。我们的结果表明,这种 3D 分级取向的核壳支架由模拟取向神经纤维结构的 NFY 组成,以诱导神经突的取向和延伸,以及模拟神经外膜层的水凝胶壳,以保护神经细胞在 3D 环境中的组织,这对于神经组织工程中仿生支架的设计具有很大的应用前景。