丝素
材料科学
自愈水凝胶
生物矿化
自愈
超细纤维
丝绸
再生(生物学)
生物医学工程
化学工程
纳米技术
高分子化学
复合材料
病理
工程类
细胞生物学
替代医学
生物
医学
作者
Liyang Shi,Fanlu Wang,Wei Zhu,Zongpu Xu,Sabine Fuchs,Jöns Hilborn,Liangjun Zhu,Qi Ma,Yingjie Wang,Xisheng Weng,Dmitri Ossipov
标识
DOI:10.1002/adfm.201700591
摘要
Despite advances in the development of silk fibroin (SF)‐based hydrogels, current methods for SF gelation show significant limitations such as lack of reversible crosslinking, use of nonphysiological conditions, and difficulties in controlling gelation time. In the present study, a strategy based on dynamic metal‐ligand coordination chemistry is developed to assemble SF‐based hydrogel under physiological conditions between SF microfibers (mSF) and a polysaccharide binder. The presented SF‐based hydrogel exhibits shear‐thinning and autonomous self‐healing properties, thereby enabling the filling of irregularly shaped tissue defects without gel fragmentation. A biomineralization approach is used to generate calcium phosphate‐coated mSF, which is chelated by bisphosphonate ligands of the binder to form reversible crosslinkages. Robust dually crosslinked (DC) hydrogel is obtained through photopolymerization of acrylamide groups of the binder. DC SF‐based hydrogel supports stem cell proliferation in vitro and accelerates bone regeneration in cranial critical size defects without any additional morphogenes delivered. The developed self‐healing and photopolymerizable SF‐based hydrogel possesses significant potential for bone regeneration application with the advantages of injectability and fit‐to‐shape molding.
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