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使用形状变形水凝胶的 4D 生物制造。

4D Biofabrication Using Shape-Morphing Hydrogels.

机构信息

College of Engineering, University of Georgia, Athens, GA, 30602, USA.

College of Family and Consumer Sciences, University of Georgia, Athens, GA, 30602, USA.

出版信息

Adv Mater. 2017 Dec;29(46). doi: 10.1002/adma.201703443. Epub 2017 Oct 12.

Abstract

Despite the tremendous potential of bioprinting techniques toward the fabrication of highly complex biological structures and the flourishing progress in 3D bioprinting, the most critical challenge of the current approaches is the printing of hollow tubular structures. In this work, an advanced 4D biofabrication approach, based on printing of shape-morphing biopolymer hydrogels, is developed for the fabrication of hollow self-folding tubes with unprecedented control over their diameters and architectures at high resolution. The versatility of the approach is demonstrated by employing two different biopolymers (alginate and hyaluronic acid) and mouse bone marrow stromal cells. Harnessing the printing and postprinting parameters allows attaining average internal tube diameters as low as 20 µm, which is not yet achievable by other existing bioprinting/biofabrication approaches and is comparable to the diameters of the smallest blood vessels. The proposed 4D biofabrication process does not pose any negative effect on the viability of the printed cells, and the self-folded hydrogel-based tubes support cell survival for at least 7 d without any decrease in cell viability. Consequently, the presented 4D biofabrication strategy allows the production of dynamically reconfigurable architectures with tunable functionality and responsiveness, governed by the selection of suitable materials and cells.

摘要

尽管生物打印技术在制造高度复杂的生物结构方面具有巨大的潜力,并且在 3D 生物打印方面取得了蓬勃的进展,但目前方法最关键的挑战是打印中空管状结构。在这项工作中,开发了一种先进的 4D 生物制造方法,基于对形状变形生物聚合物水凝胶的打印,以制造具有空前的直径和结构控制的中空自折叠管,具有高分辨率。该方法的多功能性通过使用两种不同的生物聚合物(海藻酸盐和透明质酸)和小鼠骨髓基质细胞得到证明。利用打印和后打印参数,可以实现低至 20 µm 的平均内部管直径,这是其他现有的生物打印/生物制造方法尚无法实现的,并且与最小血管的直径相当。所提出的 4D 生物制造工艺对打印细胞的活力没有任何负面影响,并且自折叠水凝胶基管支持细胞存活至少 7 天,而细胞活力没有任何下降。因此,所提出的 4D 生物制造策略允许生产具有可调功能和响应性的动态可重构架构,由合适的材料和细胞的选择来控制。

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