Yoo Jin, Park Ji Hun, Kwon Young Woo, Chung Justin J, Choi In Cheul, Nam Jae Joon, Lee Hyun Su, Jeon Eun Young, Lee Kangwon, Kim Soo Hyun, Jung Youngmee, Park Jong Woong
Center for Biomaterials, Biomedical Research Institute, Korea Institute of Science and Technology (KIST), Seoul, Republic of Korea.
Biomater Sci. 2020 Nov 21;8(22):6261-6271. doi: 10.1039/d0bm00847h. Epub 2020 Oct 5.
Peripheral nerve injury results in significant sensory and motor functional deficits. Although direct neurorrhaphy in the early phase may reduce its devastating effects, direct end-to-end neurorrhaphy is sometimes impossible owing to a defect at the injured site of the nerve. Autogenous nerve graft is a primary consideration for peripheral nerve defects; however, significant morbidity of the donor site is inevitable. Recently, the treatment using engineered synthetic nerve conduits has been regarded as a promising strategy to promote the regeneration of peripheral nerve defects. In this study, we developed longitudinally oriented collagen hydrogel-grafted elastic nerve guidance conduits (NGC) to reconstruct sciatic nerve defects. An elastic NGC was prepared by using poly(lactide-co-caprolactone) (PLCL), and electrospun PLCL was adopted to fabricate nanoporous structures with appropriate permeability for nerve regeneration. Oriented collagen hydrogels were prepared by the 3D printing method to achieve a microscale hydrogel pattern. Based on sciatic nerve injury models in rats, we confirmed the beneficial effects of the NGC with 3D printed collagen hydrogel on axonal regeneration and remyelination along with superior functional recovery in comparison with the NGC filled with the bulk collagen hydrogel. It is believed that the aligned collagen hydrogels provide a preferable environment for nerve regeneration, functioning as an oriented guidance path. In conclusion, the PLCL nerve guide conduit containing a 3D printed aligned collagen hydrogel can be useful for peripheral nerve regeneration.
周围神经损伤会导致严重的感觉和运动功能缺陷。尽管早期直接神经缝合术可能会减轻其破坏性影响,但由于神经损伤部位存在缺损,有时无法进行直接的端端神经缝合。自体神经移植是周围神经缺损的首要考虑方法;然而,供体部位出现明显的并发症是不可避免的。近年来,使用工程合成神经导管进行治疗被认为是促进周围神经缺损再生的一种有前景的策略。在本研究中,我们开发了纵向取向的胶原水凝胶接枝弹性神经导向导管(NGC)来修复坐骨神经缺损。通过使用聚(丙交酯 - 共 - 己内酯)(PLCL)制备弹性NGC,并采用静电纺丝PLCL制造具有适合神经再生的适当渗透性的纳米多孔结构。通过3D打印方法制备取向胶原水凝胶,以实现微观尺度的水凝胶图案。基于大鼠坐骨神经损伤模型,我们证实了与填充块状胶原水凝胶的NGC相比,具有3D打印胶原水凝胶的NGC对轴突再生和髓鞘再生具有有益作用,同时功能恢复更佳。据信,排列的胶原水凝胶为神经再生提供了一个更适宜的环境,起到定向引导路径的作用。总之,含有3D打印排列胶原水凝胶的PLCL神经导向导管可用于周围神经再生。