Gelatin-tyramine addition and low hydrogel density improves cell attachment, migration, and metabolic activity in vitro and tissue response in vivo in enzymatically crosslinkable dextran-hyaluronic acid hydrogels

自愈水凝胶 明胶 细胞包封 体内 透明质酸 生物物理学 化学 组织工程 右旋糖酐 细胞粘附 材料科学 生物化学 细胞 生物医学工程 高分子化学 解剖 生物技术 生物 医学
作者
Jan Hendriks,Bram Zoetebier,Carolina Serrano Larrea,Nguyen Xuan Thanh Le,Daniël B.F. Saris,Marcel Karperien
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:259 (Pt 2): 128843-128843 被引量:6
标识
DOI:10.1016/j.ijbiomac.2023.128843
摘要

Hydrogels are receiving increasing attention for their use in 3D cell culture, tissue engineering, and bioprinting applications. Each application places specific mechanical and biological demands on these hydrogels. We developed a hydrogel toolbox based on enzymatically crosslinkable polysaccharides via tyramine (TA) moieties, allowing for rapid and tunable crosslinking with well-defined stiffness and high cell viability. Including gelatin modified with TA moieties (Gel-TA) improved the hydrogels' biological properties; 3 T3 fibroblasts and HUVECs attached to and proliferated on the enriched hydrogels at minute Gel-TA concentrations, in contrast to bare or unmodified gelatin-enriched hydrogels. Moreover, we were able to switch HUVECs from a quiescent to a migratory phenotype simply by altering the ligand concentration, demonstrating the potential to easily control cell fate. In encapsulation studies, Gel-TA significantly improved the metabolic activity of 3 T3 fibroblasts in soft hydrogels. Furthermore, we showed rapid migration and network formation in Gel-TA enriched hydrogels in contrast to a non-migratory behavior in non-enriched polysaccharide hydrogels. Finally, low hydrogel density significantly improves tissue response in vivo with large infiltration and low fibrotic reaction. Further development by adding ECM proteins, peptides, and growth factor adhesion sites will lead to a toolbox for hydrogels tailored toward their desired application.

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