成骨细胞
机械转化
细胞生物学
再生(生物学)
细胞骨架
脚手架
骨愈合
生物医学工程
化学
机械生物学
细胞
骨细胞
组织工程
氧化应激
细胞外基质
材料科学
基质金属蛋白酶
间充质干细胞
生物物理学
骨组织
细胞损伤
细胞生长
基质(化学分析)
伤口愈合
骨重建
作者
Rui Luo,Tian Wang,Zhang Tongmei,Yanan Wang,Mingzhu Sun,Y G Liu,Jun Shen,Ruixin Li
标识
DOI:10.1002/adhm.202505818
摘要
Critical-sized maxillofacial bone defects are frequently exposed to pathological mechanical overload (MO), which disrupts cellular mechanosensing and compromises bone regeneration. However, strategies that protect osteogenic cells from overload-induced mechanobiological dysfunction remain limited. Here, we develop a biomimetic scaffold incorporating liposomal quercetin (LQ) into a collagen/silk fibroin/nano-hydroxyapatite matrix (LQ-CSH) to restore osteoblast function under pathological loading conditions. MO induces cytoskeletal disorganization and oxidative stress, leading to inactivation of the mechanotransducer Yes-associated protein (YAP). LQ treatment markedly reduces intracellular oxidative stress, preserves β-actin cytoskeletal integrity, and restores YAP nuclear localization, thereby rescuing osteoblast proliferation and osteogenic differentiation. Pharmacological inhibition of β-actin polymerization or YAP signaling abolishes these protective effects, confirming the critical role of the β-actin/YAP mechanosensing axis. In a rabbit mandibular critical-sized defect model with simulated occlusal overload, LQ-CSH scaffolds significantly enhance bone regeneration, improving bone volume fraction, mineral density, and trabecular architecture compared with control scaffolds. These findings highlight a mechanochemical strategy that protects osteogenic cells from overload-induced dysfunction and provide a promising therapeutic approach for bone regeneration in mechanically hostile environments.
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