自愈水凝胶
去细胞化
生物加工
细胞外基质
生物医学工程
伤口愈合
材料科学
组织工程
再生医学
纳米技术
再生(生物学)
细胞包封
细胞外
基质(化学分析)
生物物理学
伤口闭合
机械强度
化学
皮肤修复
生物相容性
碎片(计算)
生物材料
脚手架
组织修复
作者
Kun Zhang,Noel Richard Prakash,Jordan W. Davern,Alexandra Chrysanthou,Yiyang Guo,Farah Yahiaoui,Yanen Wang,Liisa M. Blowes,John T. Connelly
标识
DOI:10.1016/j.actbio.2025.09.051
摘要
Biomaterials derived from decellularized extracellular matrix (dECM) contain a complex mixture of proteins, proteoglycans, and signaling molecules that mimic the native tissue microenvironment and provide important cues for regulating cell function. However, dECM-based materials often lack mechanical integrity and tuneability, which limits their applications in tissue engineering. In this study, we modified skin-derived dECM with methacryloyl functional groups (MA-dECM) to support photo-crosslinking and the formation of mechanically tunable hydrogels with up to a 30-fold increase in the elastic modulus. In addition, we generated granular MA-dECM hydrogels by fragmentation into microgels and compaction by centrifugation. Granular MA-dECM hydrogels displayed shear-thinning properties, were compatible with extrusion 3D printing, and could be stabilized by secondary photo-crosslinking. In vitro studies confirmed good adhesion, viability, and proliferation of endothelial cells in both the bulk and granular gels. In skin wound healing studies in mice, application of either bulk or granular MA-dECM gels to the wound bed significantly increased wound closure compared to untreated control mice, and this response was associated with elevated vascularization at early time points. These findings demonstrate that modification of dECM materials with photo-crosslinkable moieties introduces mechanical tuneability and compatibility with advanced biofabrication processes, while retaining their unique biological activity. MA-dECM hydrogels may therefore be attractive biomaterials for improving wound healing and skin repair. STATEMENT OF SIGNIFICANCE: Biomaterials derived from decellularized extracellular matrix (dECM) contain a rich mix of biologically active macromolecules but often lack the mechanical integrity and tunability required for regenerative medicine applications. In this study, we develop robust methods to modify and process dECM from the skin into granular hydrogels with tunable mechanical properties and improved printability compared to unmodified dECM-based materials. We further demonstrate that skin-derived ECM is not only biocompatible but also accelerates healing in acute wounds in vivo. The granular dECM hydrogels may therefore have therapeutic potential for promoting skin repair and regeneration in the future.
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