Methacrylated fibrinogen hydrogels for 3D cell culture and delivery

自愈水凝胶 材料科学 组织工程 生物相容性 明胶 生物材料 体内 三维细胞培养 细胞包封 乙二醇 脚手架 生物医学工程 化学 生物物理学 高分子化学 纳米技术 体外 生物化学 有机化学 医学 生物技术 冶金 生物
作者
Haneen Simaan‐Yameen,Orit Bar‐Am,Galit Saar,Dror Seliktar
出处
期刊:Acta Biomaterialia [Elsevier]
卷期号:164: 94-110 被引量:13
标识
DOI:10.1016/j.actbio.2023.03.046
摘要

Methacrylation was performed on fibrinogen to design a new biomedical hydrogel for 3D cell culture or as a biodegradable delivery matrix for in vivo implantation. The methacrylation of denatured fibrinogen in solution was performed using methacrylic anhydride (MAA). The extent of fibrinogen methacrylation was quantified by proton NMR and controlled using stochiometric quantities of MAA during the reaction. The methacrylated fibrinogen (FibMA) hydrogels were formed by light-activated free-radical polymerization in the presence of macromolecular cross-linking polymers made from acrylated poly(ethylene glycol) (PEG). The biocompatibility and biodegradability of the FibMA hydrogels were characterized by in vitro assays and in vivo implantation experiments using quantitative magnetic resonance imaging (MRI) of the implant volume. The FibMA supported the growth and metabolic activity of human dermal fibroblasts in both 2D and 3D cultures. The methacrylation did not alter important biological attributes of the fibrinogen, including the ability to support cell adhesion and 3D cell culture, as well as to undergo proteolysis. Animal experiments confirmed the biodegradability of the FibMA for potential use as a scaffold in tissue engineering, as a bioink for 3D bioprinting, or as a biodegradable matrix for in vivo sustained delivery of bioactive factors. This paper describes methacrylated fibrinogen (FibMA) and the formation of a biomedical hydrogel from FibMA for cell culture and other biomedical applications. Inspired from methacrylated gelatin (GelMA), the FibMA is made from blood-derived fibrinogen which is more suitable for clinical use. Sharing similar properties to other hydrogels made from methacrylated proteins, the FibMA has yet to be reported in the literature. In this manuscript, we provide the methodology to produce the FibMA hydrogels, we document the mechanical versatility of this new biomaterial, and we show the biocompatibility using 3D cell culture studies and in vivo implantations.
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