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三维打印带有活 Schwann 细胞的支架用于潜在的神经组织工程应用。

3D bioprinting of scaffolds with living Schwann cells for potential nerve tissue engineering applications.

机构信息

Department of Mechanical Engineering, College of Engineering, University of Saskatchewan, S7N 5A9, SK, Canada.

出版信息

Biofabrication. 2018 Jun 29;10(3):035014. doi: 10.1088/1758-5090/aacd30.

Abstract

Three-dimensional bioprinting of biomaterials shows great potential for producing cell-encapsulated scaffolds to repair nerves after injury or disease. For this, preparation of biomaterials and bioprinting itself are critical to create scaffolds with both biological and mechanical properties appropriate for nerve regeneration, yet remain unachievable. This paper presents our study on bioprinting Schwann cell-encapsulated scaffolds using composite hydrogels of alginate, fibrin, hyaluronic acid, and/or RGD peptide, for nerve tissue engineering applications. For the preparation of composite hydrogels, suitable hydrogel combinations were identified and prepared by adjusting the concentration of fibrin based on the morphological spreading of Schwann cells. In bioprinting, the effects of various printing process parameters (including the air pressure for dispensing, dispensing head movement speed, and crosslinking conditions) on printed structures were investigated and, by regulating these parameters, mechanically-stable scaffolds with fully interconnected pores were printed. The performance of Schwann cells within the printed scaffolds were examined in terms of viability, proliferation, orientation, and ability to produce laminin. Our results show that the printed scaffolds can promote the alignment of Schwann cells inside scaffolds and thus provide haptotactic cues to direct the extension of dorsal root ganglion neurites along the printed strands, demonstrating their great potential for applications in the field of nerve tissue engineering.

摘要

三维生物打印的生物材料在产生细胞包裹支架以修复损伤或疾病后的神经方面显示出巨大的潜力。为此,生物材料的制备和生物打印本身对于创建具有适当的生物和机械性能的支架至关重要,这些支架适合神经再生,但仍无法实现。本文介绍了我们使用藻酸盐、纤维蛋白、透明质酸和/或 RGD 肽的复合水凝胶进行生物打印雪旺细胞包裹支架的研究,用于神经组织工程应用。为了制备复合水凝胶,根据雪旺细胞的形态扩散,确定并制备了合适的水凝胶组合,并调整了纤维蛋白的浓度。在生物打印中,研究了各种打印工艺参数(包括分配的气压、分配头移动速度和交联条件)对打印结构的影响,并通过调节这些参数,打印出具有完全连通孔的机械稳定的支架。通过检查细胞活力、增殖、取向以及产生层粘连蛋白的能力,评估了打印支架内雪旺细胞的性能。我们的结果表明,打印支架可以促进雪旺细胞在支架内的排列,从而提供趋化性线索,引导背根神经节神经突沿着打印线延伸,这表明它们在神经组织工程领域具有巨大的应用潜力。

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