Biomechanical and Biological Characterization of XGel, a Human‐Derived Hydrogel for Stem Cell Expansion and Tissue Engineering

自愈水凝胶 组织工程 细胞外基质 脚手架 生物医学工程 材料科学 生物相容性 纤维连接蛋白 再生医学 透明质酸 化学 细胞 生物化学 解剖 生物 医学 高分子化学 冶金
作者
Jorge A. Belgodere,Haley R. Lassiter,Jordan Robinson,Katie Hamel,Emma Rogers,Omair A. Mohiuddin,Liwen Zhang,Xiying Wu,Jeffrey M. Gimble,Trivia Frazier,W. Todd Monroe,Cecilia G. Sanchez
出处
期刊:Advanced biology [Wiley]
卷期号:7 (8) 被引量:3
标识
DOI:10.1002/adbi.202200332
摘要

Hydrogels are 3D scaffolds used as alternatives to in vivo models for disease modeling and delivery of cells and drugs. Existing hydrogel classifications include synthetic, recombinant, chemically defined, plant- or animal-based, and tissue-derived matrices. There is a need for materials that can support both human tissue modeling and clinically relevant applications requiring stiffness tunability. Human-derived hydrogels are not only clinically relevant, but they also minimize the use of animal models for pre-clinical studies. This study aims to characterize XGel, a new human-derived hydrogel as an alternative to current murine-derived and synthetic recombinant hydrogels that features unique physiochemical, biochemical, and biological properties that support adipocyte and bone differentiation. Rheology studies determine the viscosity, stiffness, and gelation features of XGel. Quantitative studies for quality control support consistency in the protein content between lots. Proteomics studies reveal that XGel is predominantly composed of extracellular matrix proteins, including fibrillin, collagens I-VI, and fibronectin. Electron microscopy of the hydrogel provides phenotypic characteristics in terms of porosity and fiber size. The hydrogel demonstrates biocompatibility as a coating material and as a 3D scaffold for the growth of multiple cell types. The results provide insight into the biological compatibility of this human-derived hydrogel for tissue engineering.
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