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用于促进和可视化工程化骨重建的生物活性核壳CaF上转换纳米结构

Bioactive Core-Shell CaF Upconversion Nanostructure for Promotion and Visualization of Engineered Bone Reconstruction.

作者信息

Li Zhihao, Liu Haoran, Wang Rui, Ji Chenhui, Wei Yan, Shi Miusi, Wang Yingqian, Du Yaping, Zhang Yufeng, Yuan Quan, Yan Chunhua

机构信息

Key Laboratory of Analytical Chemistry for Biological Medicine (Ministry of Education), College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, 430072, China.

State Key Laboratory Breeding Base of Basic Science of Stomatology (Hubei-MOST) and Key Laboratory of Oral Biomedicine (Ministry of Education), School and Hospital of Stomatology, Wuhan University, Wuhan, 430072, China.

出版信息

ACS Nano. 2020 Nov 24;14(11):16085-16095. doi: 10.1021/acsnano.0c08013. Epub 2020 Nov 5.

Abstract

Inorganic ion metabolism plays significant roles in various life processes including signal transduction, substance exchange, and cellular constructions. Regulation and monitoring of ion metabolism offer great promise to modulate biological activities and provide insights into related mechanisms. Here, a synergistic nanodepot based on a bioactive core-shell CaF upconversion nanostructure that integrates multiple mineral ions for metabolic regulation was built for the acceleration and monitoring of the biomineralization process. Multiple mineral ions released from the nanodepots can accelerate the growth of inorganic crystals and enhance the production of organic matrixes, synergistically facilitating the regeneration of bone defects . During the process, such a nanodepot can be constructed to specifically recognize osteoblasts for the monitoring of biomineralization. This nanoprobe represents an efficient strategy to promote and monitor biomineralization-related metabolic activities with applications in fundamental research, disease diagnosis, and regenerative medicine.

摘要

无机离子代谢在包括信号转导、物质交换和细胞构建在内的各种生命过程中发挥着重要作用。离子代谢的调节和监测为调节生物活性和深入了解相关机制提供了巨大的前景。在此,构建了一种基于生物活性核壳CaF上转换纳米结构的协同纳米储库,该纳米结构整合了多种矿物质离子用于代谢调节,以加速和监测生物矿化过程。纳米储库释放的多种矿物质离子可加速无机晶体的生长并增强有机基质的产生,协同促进骨缺损的修复。在此过程中,这种纳米储库可被构建为特异性识别成骨细胞以监测生物矿化。这种纳米探针代表了一种促进和监测生物矿化相关代谢活动的有效策略,可应用于基础研究、疾病诊断和再生医学。

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