Hydrogels for 3D bioprinting in tissue engineering and regenerative medicine: Current progress and challenges

3D生物打印 生物制造 自愈水凝胶 再生医学 组织工程 脚手架 纳米技术 生物加工 背景(考古学) 计算机科学 材料科学 再生(生物学) 生化工程 生物医学工程 工程类 化学 细胞 生物技术 古生物学 高分子化学 生物 生物化学 细胞生物学
作者
Wenzhuo Fang,Ming–Hsuan Yang,Liyang Wang,Wenyao Li,Meng Liu,Yangwang Jin,Yuhui Wang,Ranxing Yang,Ying Wang,Kaile Zhang,Qiang Fu
出处
期刊:International Journal of bioprinting [Whioce Publishing Pte Ltd.]
卷期号:9 (5): 759-759 被引量:27
标识
DOI:10.18063/ijb.759
摘要

Three-dimensional (3D) bioprinting is a promising and innovative biomanufacturing technology, which can achieve precise position controlling of cells and extracellular matrix components, and further create complex and functional multi-cellular tissues or organs in a 3D environment. Bioink in the form of the cell-loaded hydrogel is most commonly used in bioprinting, and it is vital to the process of bioprinting. The bionic scaffold should possess suitable mechanical strength, biocompatibility, cell proliferation, survival, and other biological characteristics. The disadvantages of natural polymer hydrogel materials include poor mechanical properties as well as low printing performance and shape fidelity. Over the past years, a series of synthetic, modified, and nanocomposite hydrogels have been developed, which can interact through physical interactions, chemical covalent bond crosslinking, and bioconjugation reactions to change the characteristics to satisfy the requirements. In this review, a comprehensive summary is provided on recent research regarding the unique properties of hydrogel bioinks for bioprinting, with optimized methods and technologies highlighted, which have both high-value research significance and potential clinical applications. A critical analysis of the strengths and weaknesses of each hydrogel-based biomaterial ink is presented at the beginning or end of each section, alongside the latest improvement strategies employed by current researchers to address their respective shortcomings. Furthermore, we propose potential repair sites for each hydrogel-based ink based on their distinctive repair features, while reflecting on current research limitations. Finally, we synthesize and analyze expert opinions on the future of these hydrogel-based bioinks in the broader context of tissue engineering and regenerative medicine, offering valuable insights for future investigations.
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