生物矿化
矿化组织
牙本质
搪瓷漆
牙科
矿化(土壤科学)
牙髓(牙)
硬组织
化学
釉原蛋白
材料科学
无定形磷酸钙
生物医学工程
人类牙齿
牙釉质
纳米技术
仿生材料
生物相容性
锚固
生物相容性材料
生物物理学
组织工程
仿生学
盖髓
牙乳头
牙髓干细胞
细胞
牙齿再矿化
肽
作者
Xiangshu Chen,Zhenqi Liu,Rui Ma,Sihan Gao,Wenyue Zheng,Fanfu Zhang,Junzhuo Lu,Linglin Zhang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-12-01
卷期号:19 (49): 41684-41703
被引量:2
标识
DOI:10.1021/acsnano.5c13970
摘要
Dental caries at varying stages exhibits diverse microstructural damage in dental hard tissues and complex restorative needs. A key challenge lies in developing therapeutic materials capable of reversing multitype damage, including inorganic mineral loss, organic collagen demineralization, and pulpal irritation, while anchoring to differentiated enamel-dentin-pulp interfaces for multitissue repair. Herein, a simplified "all-in-one" biomimetic strategy inspired by the biomineralization microenvironment during tooth development is proposed, constructing QP5/ACP@MSN (MQA) nanounit for caries repair. This nanounit incorporates two pivotal modulators in biomineralization: the amelogenin-derived peptide QP5 as a thread-like regulator and amorphous calcium phosphate (ACP) as a mineral source. Through the orchestrated coordination of QP5 and ACP, MQA achieves efficient anchoring to residual hydroxyapatite in carious tissues. In vitro, it promotes biomineralization of enamel and dentin and odontogenic differentiation of pulp cells. In vivo, it demonstrates prevention-restoration-regeneration effects under highly cariogenic environment in a rat caries model. As a functional unit, MQA provides mineralization guidance, mineral supply, and pulp cell activation. As a structural unit, MQA self-assembles onto substrates to provide versatile applications for various intraoral tissue interfaces. This study introduces a unified solution for multitype and multitissue caries repair, while offering strategic inspiration for repairing lesions with complex tissue damage.
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