Bioprinting Macroporous Hydrogel with Aqueous Two‐Phase Emulsion‐Based Bioink: In Vitro Mineralization and Differentiation Empowered by Phosphorylated Cellulose Nanofibrils

自愈水凝胶 材料科学 纤维素 乳状液 3D生物打印 化学工程 脚手架 明胶 纳米技术 生物医学工程 组织工程 化学 生物化学 高分子化学 医学 工程类
作者
Qingbo Wang,Özge Karadaş,Jessica M. Rosenholm,Chunlin Xu,Tuomas Näreoja,Xiaoju Wang
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:34 (29) 被引量:19
标识
DOI:10.1002/adfm.202400431
摘要

Abstract Aqueous two‐phase emulsion (ATPE)‐based bioinks, a creative innovation for bioprinting, enable the fabrication of complex 3D cell‐laden hydrogels with macroporous structure, which promote cellular activities within the scaffold. However, these bioinks intrinsically lack stability and specific biofunctionality, potentially limiting their application for targeted tissue engineering. This study proposes a new perspective by introducing less than 0.1% phosphorylated cellulose nanofibrils (pCNF), a 1D nanofibril top‐down produced from natural biomasses, into a dextran/methacrylated gelatin (GelMA)‐based ATPE system for extrusion‐based bioprinting of preosteoblastic cells, aiming to fabricate macroporous hydrogels with osteogenic differentiation potential. The pCNF that is selectively partitioned in the GelMA phase can not only improve the emulsion stability and alter the rheological behaviors of the ATPE‐based bioink, but also enhance the damping capacity and mineralization ability of the crosslinked hydrogels. Furthermore, macroporous hydrogels with pCNF demonstrate increased cell activity and higher viability in post‐printing, along with higher alkaline phosphatase activity and osteoblastic gene expression. Importantly, the organized interfaces within the hydrogel facilitate the formation of macroscopic biomineralized nodules in vitro. The incorporation of multifunctional pCNF in the ATPE system significantly boosts the physiochemical and biological performance of the macropore‐forming bioink, transforming them into a suitable platform for engineering in vitro bone models.
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