Liu Xiaoyin, Zhang Guijun, Wei Pan, Zhong Lin, Chen Yaxing, Zhang Jianyong, Chen Xuyi, Zhou Liangxue
Department of Neurosurgery, West China Hospital, West China Medical School, Sichuan University, Chengdu 610041, Sichuan, China.
Department of Neurosurgery, The First People's Hospital Of Long Quan yi District, Chengdu 610000, Sichuan, China.
Regen Biomater. 2022 Jun 27;9:rbac043. doi: 10.1093/rb/rbac043. eCollection 2022.
The secretome secreted by stem cells and bioactive material has emerged as a promising therapeutic choice for traumatic brain injury (TBI). We aimed to determine the effect of 3D-printed collagen/chitosan/secretome derived from human umbilical cord blood mesenchymal stem cells scaffolds (3D-CC-ST) on the injured tissue regeneration process. 3D-CC-ST was performed using 3D printing technology at a low temperature (-20°C), and the physical properties and degeneration rate were measured. The utilization of low temperature contributed to a higher cytocompatibility of fabricating porous 3D architectures that provide a homogeneous distribution of cells. Immediately after the establishment of the canine TBI model, 3D-CC-ST and 3D-CC (3D-printed collagen/chitosan scaffolds) were implanted into the cavity of TBI. Following implantation of scaffolds, neurological examination and motor evoked potential detection were performed to analyze locomotor function recovery. Histological and immunofluorescence staining were performed to evaluate neuro-regeneration. The group treated with 3D-CC-ST had good performance of behavior functions. Implanting 3D-CC-ST significantly reduced the cavity area, facilitated the regeneration of nerve fibers and vessel reconstruction, and promoted endogenous neuronal differentiation and synapse formation after TBI. The implantation of 3D-CC-ST also markedly reduced cell apoptosis and regulated the level of systemic inflammatory factors after TBI.
干细胞分泌组和生物活性材料已成为创伤性脑损伤(TBI)一种有前景的治疗选择。我们旨在确定3D打印的源自人脐带血间充质干细胞的胶原蛋白/壳聚糖/分泌组支架(3D-CC-ST)对损伤组织再生过程的影响。3D-CC-ST采用3D打印技术在低温(-20°C)下制备,并测量其物理性质和降解率。低温的利用有助于制造多孔3D结构时具有更高的细胞相容性,从而使细胞均匀分布。犬TBI模型建立后立即将3D-CC-ST和3D-CC(3D打印的胶原蛋白/壳聚糖支架)植入TBI腔。支架植入后,进行神经学检查和运动诱发电位检测以分析运动功能恢复情况。进行组织学和免疫荧光染色以评估神经再生。3D-CC-ST治疗组具有良好的行为功能表现。植入3D-CC-ST可显著减小腔面积,促进神经纤维再生和血管重建,并促进TBI后内源性神经元分化和突触形成。3D-CC-ST的植入还显著减少TBI后的细胞凋亡并调节全身炎症因子水平。