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Versatile design of hydrogel-based scaffolds with manipulated pore structure for hard-tissue regeneration

机译:具有可操纵孔结构的水凝胶基支架的多功能设计,可用于硬组织再生

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In recent years, a variety of biomimetic hydrogel scaffolds have been used in tissue engineering because hydrogels can provide reasonable soft-tissue-like environmental conditions for various cell responses. However, although hydrogels can provide an outstanding biofunctional platform, their poor mechanical stability and low processability have been obstacles for their usage as biomedical scaffolds. To overcome this limitation, we propose a simple and versatile method using 3D printing supplemented with a low-temperature working plate and coating process to reinforce the mechanical properties and various cellular activities by accommodating the poly(epsilon-caprolactone) (PCL). To determine the efficiency of the method, we used two typical hydrogels (alginate and collagen), which were deposited in a multi-layer configuration, and PCL as a coating agent. The scaffolds were evaluated in terms of various physical and cellular activities (metabolic activity and osteogenic activity). Throughout the experiments, significant increases in the tensile modulus (> 6-fold), cell proliferation (> 1.2-fold), and calcium deposition (> 1.3-fold) were observed for the hydrogel/PCL scaffolds compared to those for pure hydrogel. Based on the experimental results, we can confirm that the proposed hydrogel scaffold can be a highly promising biomedical scaffold for application in tissue regeneration.
机译:近年来,在组织工程中已经使用了多种仿生水凝胶支架,因为水凝胶可以为各种细胞反应提供合理的类似软组织的环境条件。然而,尽管水凝胶可以提供出色的生物功能平台,但是其差的机械稳定性和低的可加工性已经成为其用作生物医学支架的障碍。为克服此限制,我们提出了一种简单而通用的方法,即使用3D打印,并辅以低温工作板和涂层工艺,以通过容纳聚(ε-己内酯)(PCL)来增强机械性能和各种细胞活性。为了确定方法的效率,我们使用了两种典型的水凝胶(藻酸盐和胶原蛋白),它们以多层结构沉积,PCL作为涂层剂。根据各种物理和细胞活性(代谢活性和成骨活性)评估支架。在整个实验中,与纯水凝胶相比,水凝胶/ PCL支架的拉伸模量(> 6倍),细胞增殖(> 1.2倍)和钙沉积(> 1.3倍)显着增加。基于实验结果,我们可以证实,提出的水凝胶支架可以是用于组织再生的高度有前途的生物医学支架。

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