挤压生物打印含弹性蛋白的生物活性双网韧性水凝胶,用于复杂弹性组织再生

IF 13.9 Q1 CHEMISTRY, MULTIDISCIPLINARY Aggregate (Hoboken, N.J.) Pub Date : 2024-01-04 DOI:10.1002/agt2.477
Di Wang, Jinshi Zeng, Hailin Zhu, Siyu Liu, Litao Jia, Wenshuai Liu, Qian Wang, Senmao Wang, Wei Liu, Jiayu Zhou, Huimin Chen, Xia Liu, Haiyue Jiang
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引用次数: 0

摘要

尽管最近在挤压含细胞水凝胶的生物打印方面取得了进展,但利用天然衍生的生物墨水来生物制造既能满足生物功能要求又具有优异机械性能的复杂弹性组织仍是一项尚未解决的挑战。在这里,我们利用精确设计的具有双网络结构的生物韧性水凝胶生物墨水来应对这一挑战。这种韧性水凝胶由能量耗散型动态交联糖胺聚糖透明质酸(邻硝基苄基接枝透明质酸)和通过席夫碱反应生成的弹性蛋白以及自由基聚合明胶甲基丙烯酰组成。弹性蛋白的加入进一步提高了水凝胶的弹性、伸展性(应变∼170%)和韧性(∼45 kJ m-3),这是因为水凝胶具有随机卷绕结构。我们利用这类新型水凝胶生物墨水进行了多种复杂弹性组织的生物打印,其形状保持良好。此外,体外和体内实验还证明,生物相容性生物墨水中弹性蛋白的存在有助于改善细胞行为和生物打印组织的生物功能,如细胞扩散、表型维持和组织再生。研究结果证实,含弹性蛋白的韧性水凝胶生物墨水具有生物打印具有生物功能的三维复杂弹性组织的潜力,可广泛应用于弹性组织再生。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Extrusion bioprinting of elastin-containing bioactive double-network tough hydrogels for complex elastic tissue regeneration

Despite recent advances in extrusion bioprinting of cell-laden hydrogels, using naturally derived bioinks to biofabricate complex elastic tissues with both satisfying biological functionalities and superior mechanical properties is hitherto an unmet challenge. Here, we address this challenge with precisely designed biological tough hydrogel bioinks featuring a double-network structure. The tough hydrogels consisted of energy-dissipative dynamically crosslinked glycosaminoglycan hyaluronic acid (o-nitrobenzyl-grafted hyaluronic acid) and elastin through Schiff's base reaction, and free-radically polymerized gelatin methacryloyl. The incorporation of elastin further improved the elasticity, stretchability (∼170% strain), and toughness (∼45 kJ m−3) of the hydrogels due to the random coiling structure. We used this novel class of hydrogel bioinks to bioprint several complex elastic tissues with good shape retention. Furthermore, in vitro and in vivo experiments also demonstrated that the existence of elastin in the biocompatible bioinks facilitated improved cell behaviors and biological functions of bioprinted tissues, such as cell spreading and phenotype maintenance as well as tissue regeneration. The results confirmed the potential of the elastin-containing tough hydrogel bioinks for bioprinting of 3D complex elastic tissues with biological functionalities, which may find widespread applications in elastic tissue regeneration.

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CiteScore
17.40
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0.00%
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审稿时长
7 weeks
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