自愈水凝胶
粘弹性
软骨发生
细胞外基质
再生(生物学)
动态力学分析
材料科学
动态模量
粘附
组织工程
明胶
生物物理学
生物医学工程
软骨
化学
复合材料
细胞生物学
体外
高分子化学
解剖
聚合物
生物化学
医学
生物
作者
Changjiang Liu,Qifan Yu,Zhangqin Yuan,Qianping Guo,Xiting Liao,Feng Han,Tao Feng,Shuai Liu,Runze Zhao,Zhuang Zhu,Haijiao Mao,Caihong Zhu,Bin Li
标识
DOI:10.1016/j.bioactmat.2022.07.031
摘要
The dynamic extracellular matrix (ECM) constantly affects the behaviors of cells. To mimic the dynamics of ECM with controllable stiffness and energy dissipation, this study proposes a strategy in which a small molecule, 3,4-dihydroxybenzaldehyde (DB), was used as fast "dynamic bridges'' to construct viscoelastic gelatin methacryloyl (GelMA)-based hydrogels. The storage modulus and loss modulus of hydrogels were independently adjusted by the covalent crosslinking density and by the number of dynamic bonds. The hydrogels exhibited self-healing property, injectability, excellent adhesion and mechanical properties. Moreover, the in vitro results revealed that the viscous dissipation of hydrogels favored the spreading, proliferation, osteogenesis and chondrogenesis of bone marrow mesenchymal stem cells (BMSCs), but suppressed their adipogenesis. RNA-sequencing and immunofluorescence suggested that the viscous dissipation of hydrogels activated Yes-associated protein (YAP) by stabilizing integrin β1, and further promoted nuclear translocation of smad2/3 and β-catenin to enhance chondrogenesis and osteogenesis. As a result, the viscoelastic GelMA hydrogels with highest loss modulus showed best effect in cartilage and subchondral bone repair. Taken together, findings from this study reveal an effective strategy to fabricate viscoelastic hydrogels for modulating the interactions between cells and dynamic ECM to promote tissue regeneration.
科研通智能强力驱动
Strongly Powered by AbleSci AI