Zhu Wei, George Jonathan K, Sorger Volker J, Grace Zhang Lijie
Department of Mechanical and Aerospace Engineering, The George Washington University, Washington DC 20052, United States of America.
Biofabrication. 2017 Apr 12;9(2):025002. doi: 10.1088/1758-5090/aa6999.
3D printing has shown promise for neural regeneration by providing customized nerve scaffolds to structurally support and bridge the defect gap as well as deliver cells or various bioactive substances. Low-level light therapy (LLLT) exhibits positive effects on rehabiliation of degenerative nerves and neural disorders. With this in mind, we postulate that 3D printed neural scaffold coupling with LLLT will generate a new strategy to repair neural degeneration. To achieve this goal, we applied red laser light to stimualte neural stem cells on 3D printed scaffolds and investigated the subsequent cell response with respect to cell proliferation and differentiation. Here we show that cell prolifeartion rate and intracellular reactive oxgen species synthesis were significantly increased after 15 s laser stimulation follwed by 1 d culture. Over culturing time of 14 d in vitro, the laser stimulation promoted neuronal differentiation of neural stem cells, while the glial differentiation was suppressed based on results of both immunocytochemistry studies and real-time quantitative reverse transcription polymerase chain reaction testing. These findings suggest that integration of 3D printing and LLLT might provide a powerful methodology for neural tissue engineering.
3D打印通过提供定制的神经支架来在结构上支持和桥接缺损间隙以及递送细胞或各种生物活性物质,已显示出在神经再生方面的前景。低强度光疗法(LLLT)对退行性神经和神经疾病的康复具有积极作用。考虑到这一点,我们推测3D打印神经支架与LLLT相结合将产生一种修复神经退变的新策略。为实现这一目标,我们应用红色激光刺激3D打印支架上的神经干细胞,并研究随后关于细胞增殖和分化的细胞反应。在此我们表明,在15秒激光刺激后接着进行1天培养,细胞增殖率和细胞内活性氧合成显著增加。在体外14天的培养时间内,基于免疫细胞化学研究和实时定量逆转录聚合酶链反应测试的结果,激光刺激促进了神经干细胞的神经元分化,同时抑制了神经胶质细胞分化。这些发现表明3D打印与LLLT的整合可能为神经组织工程提供一种强大的方法。