Zhang Liming, Zhang Hui, Wang Heran, Guo Kai, Zhu Huixuan, Li Song, Gao Feiyang, Li Shijie, Yang Zhenda, Liu Xin, Zheng Xiongfei
State Key Laboratory of Robotics, Shenyang Institute of Automation, Chinese Academy of Sciences, Shenyang, China.
Institutes for Robotics and Intelligent Manufacturing, Chinese Academy of Sciences, Shenyang, China.
3D Print Addit Manuf. 2023 Oct 1;10(5):1046-1054. doi: 10.1089/3dp.2021.0203. Epub 2023 Oct 10.
Nerve guidance conduits (NGCs) are an essential solution for peripheral nerve repair and regeneration in tissue engineering and medicine. However, the ability of current NGCs is limited to repairing longer nerve gap (i.e., >20 mm) because it cannot meet the following two conditions simultaneously: (1) directional guidance of the axial high-density channels and (2) regenerative stimulation of the extracellular matrix secreted by Schwann cells (SCs). Therefore, we propose a multi-material 3D bioprinting process to fabricate multi-channel nerve guide conduits (MNGCs) containing SCs. In the article, cell-laden methacrylate gelatin (GelMA) was used as the bulk material of MNGCs. To improve the printing accuracy of the axial channels and the survival rate of SCs, we systematically optimized the printing temperature parameter based on hydrogel printability analysis. The multi-material bioprinting technology was used to realize the alternate printing of supporting gelatin and cell-laden GelMA. Then, the high-accuracy channels were fabricated through the UV cross-linking of GelMA and the dissolving technique of gelatin. The SCs distributed around the channels with a high survival rate, and the cell survival rate maintained above 90%. In general, the study on multi-material 3D printing was carried out from the fabricating technology and material analysis, which will provide a potential solution for the fabrication of MNGCs containing SCs.
神经引导导管(NGCs)是组织工程和医学中周围神经修复与再生的重要解决方案。然而,目前的神经引导导管修复较长神经间隙(即>20毫米)的能力有限,因为它无法同时满足以下两个条件:(1)轴向高密度通道的定向引导,以及(2)雪旺细胞(SCs)分泌的细胞外基质的再生刺激。因此,我们提出了一种多材料3D生物打印工艺来制造包含雪旺细胞的多通道神经引导导管(MNGCs)。在本文中,负载细胞的甲基丙烯酸明胶(GelMA)被用作多通道神经引导导管的主体材料。为了提高轴向通道的打印精度和雪旺细胞的存活率,我们基于水凝胶可打印性分析系统地优化了打印温度参数。采用多材料生物打印技术实现了支撑明胶和负载细胞的GelMA的交替打印。然后,通过GelMA的紫外光交联和明胶的溶解技术制造出高精度通道。雪旺细胞以高存活率分布在通道周围,细胞存活率保持在90%以上。总体而言,本研究从制造技术和材料分析方面对多材料3D打印进行了探索,这将为包含雪旺细胞的多通道神经引导导管的制造提供一种潜在的解决方案。