Rapid Volumetric Bioprinting of Decellularized Extracellular Matrix Bioinks

去细胞化 材料科学 细胞外基质 生物制造 自愈水凝胶 再生医学 生物医学工程 3D生物打印 再生(生物学) 纳米技术 组织工程 干细胞 工程类 细胞生物学 生物 遗传学 高分子化学
作者
Liming Lian,Maobin Xie,Zeyu Luo,Zhenrui Zhang,Sushila Maharjan,Xuan Mu,Carlos Ezio Garciamendez‐Mijares,Xiao Kuang,Jugal Kishore Sahoo,Guosheng Tang,Gang Li,Di Wang,Jie Guo,Federico Zertuche González,Victoria Abril Manjarrez Rivera,Ling Cai,Xuan Mei,David L. Kaplan,Yu Shrike Zhang
出处
期刊:Advanced Materials [Wiley]
卷期号:36 (34) 被引量:35
标识
DOI:10.1002/adma.202304846
摘要

Decellularized extracellular matrix (dECM)-based hydrogels are widely applied to additive biomanufacturing strategies for relevant applications. The extracellular matrix components and growth factors of dECM play crucial roles in cell adhesion, growth, and differentiation. However, the generally poor mechanical properties and printability have remained as major limitations for dECM-based materials. In this study, heart-derived dECM (h-dECM) and meniscus-derived dECM (Ms-dECM) bioinks in their pristine, unmodified state supplemented with the photoinitiator system of tris(2,2-bipyridyl) dichlororuthenium(II) hexahydrate and sodium persulfate, demonstrate cytocompatibility with volumetric bioprinting processes. This recently developed bioprinting modality illuminates a dynamically evolving light pattern into a rotating volume of the bioink, and thus decouples the requirement of mechanical strengths of bioprinted hydrogel constructs with printability, allowing for the fabrication of sophisticated shapes and architectures with low-concentration dECM materials that set within tens of seconds. As exemplary applications, cardiac tissues are volumetrically bioprinted using the cardiomyocyte-laden h-dECM bioink showing favorable cell proliferation, expansion, spreading, biomarker expressions, and synchronized contractions; whereas the volumetrically bioprinted Ms-dECM meniscus structures embedded with human mesenchymal stem cells present appropriate chondrogenic differentiation outcomes. This study supplies expanded bioink libraries for volumetric bioprinting and broadens utilities of dECM toward tissue engineering and regenerative medicine.
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