生物矿化
丝素
自愈水凝胶
再生(生物学)
材料科学
生物物理学
纳米技术
原位
组织工程
生物分子
细胞生物学
丝绸
成骨细胞
化学
纳米纤维
生物医学工程
骨愈合
骨组织
粘附
生物相容性
内生
仿生材料
表面改性
再生医学
骨整合
细胞内
细胞外
控制释放
作者
Jiaxiang Li,Yuzhi Sun,Yan Li Du,Xinyi Zhao,Mengtao Wang,Xiaowen Ren,Qian Sun,Jialin Chen,Wei Zhang
标识
DOI:10.1002/adfm.202514053
摘要
ABSTRACT Biomaterials lacking exogenous biomolecule functionalization often fail to achieve high‐quality bone regeneration. Inspired by the native biomineralization mechanisms of the bone matrix, we developed a growth factor‐free, nanoscale‐engineered silk fibroin (NESF) hydrogel to enhance in situ biomineralization and promote effective endogenous bone regeneration. By modulating SF nanofiber length to enrich acidic groups, the hydrogel acquired an increased negative surface charge, providing initial physical cues that effectively attracted inorganic ions and promoted Ca 2+ ‐PO 4 3− nucleation, resulting in a 6.09‐fold enhancement in biomineralization. These intrinsic chemical modifications further boosted the biological activity of the NESF hydrogel by promoting the adhesion and proliferation of BMSCs, and facilitated osteogenic differentiation by elevating intracellular Ca 2+ influx and activating the MAPK/ERK signaling pathway. In vivo, the NESF hydrogel exhibited superior biocompatibility, biodegradability, and in situ biomineralization in a rat subcutaneous implantation model. Furthermore, it significantly enhanced both structural and functional bone regeneration in a rat critical‐sized femoral defect model, achieving near‐complete neo‐bone formation and markedly improved motor function. This simple nanoscale engineering strategy enables SF hydrogels to deliver a cascade of intrinsic physical, chemical, and biological cues for bone regeneration without relying on exogenous biomolecules, offering a promising and translational strategy for clinical bone defect repair.
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