Zhou Gan, Chen Yifan, Dai Futao, Yu Xiaojun
Department of Biomedical Engineering, Charles V. Schaefer School of Engineering and Sciences, Stevens Institute of Technology, Hoboken, NJ 07030, United States.
Department of Biomedical Engineering, Charles V. Schaefer School of Engineering and Sciences, Stevens Institute of Technology, Hoboken, NJ 07030, United States.
Colloids Surf B Biointerfaces. 2023 Jan;221:112929. doi: 10.1016/j.colsurfb.2022.112929. Epub 2022 Oct 15.
Peripheral nerve injury (PNI) is the leading cause of permanent dysfunction in movement and sensation. Despite the rapid development of tissue engineering in peripheral nerve regeneration, autograft remains the gold standard for treating PNI. Synthesized nerve guidance conduits (NGCs) were reported as a potential alternative treatment that could replace autograft. However, most current NGCs are hollow tubular structured, or NGCs with macro or microstructures, but not both. These simple structures could not meet the need for neurite and Schwann cell guidance and accelerate peripheral nerve regeneration. In the current study, we combine unidirectional freezing with electrospinning to produce a unique NGC with longitudinal microchannels and parallel nanofibers. The in vitro study showed the importance of having both features in promoting Schwann cell growth, migration, and PC-12 cells neurite elongation. The novel NGCs could provide desirable physical support and guidance for peripheral nerve regeneration. From the current study, we found both the micro feature and the nano feature are helpful in terms of helping cell migrating through the NGCs, and the combination of both features will have a syngeneic effect.
周围神经损伤(PNI)是导致运动和感觉永久性功能障碍的主要原因。尽管组织工程在周围神经再生方面发展迅速,但自体移植仍是治疗PNI的金标准。合成神经引导导管(NGCs)被报道为一种可替代自体移植的潜在治疗方法。然而,目前大多数NGCs是空心管状结构,或具有宏观或微观结构的NGCs,但并非兼具两者。这些简单结构无法满足神经突和施万细胞引导的需求,也无法加速周围神经再生。在本研究中,我们将单向冷冻与静电纺丝相结合,制备出一种具有纵向微通道和平行纳米纤维的独特NGCs。体外研究表明,兼具这两种特征对于促进施万细胞生长、迁移以及PC-12细胞神经突伸长具有重要意义。这种新型NGCs可为周围神经再生提供理想的物理支持和引导。从本研究中,我们发现微观特征和纳米特征都有助于细胞通过NGCs迁移,且两者结合会产生协同效应。