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二维黑磷增强三维打印支架:骨肉瘤的递进式对策

2D-Black-Phosphorus-Reinforced 3D-Printed Scaffolds:A Stepwise Countermeasure for Osteosarcoma.

机构信息

State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, P. R. China.

University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.

出版信息

Adv Mater. 2018 Mar;30(10). doi: 10.1002/adma.201705611. Epub 2018 Jan 15.

Abstract

With the ever-deeper understanding of nano-bio interactions and the development of fabrication methodologies of nanomaterials, various therapeutic platforms based on nanomaterials have been developed for next-generation oncological applications, such as osteosarcoma therapy. In this work, a black phosphorus (BP) reinforced 3D-printed scaffold is designed and prepared to provide a feasible countermeasure for the efficient localized treatment of osteosarcoma. The in situ phosphorus-driven, calcium-extracted biomineralization of the intra-scaffold BP nanosheets enables both photothermal ablation of osteosarcoma and the subsequent material-guided bone regeneration in physiological microenvironment, and in the meantime endows the scaffolds with unique physicochemical properties favoring the whole stepwise therapeutic process. Additionally, a corrugated structure analogous to Haversian canals is found on newborn cranial bone tissue of Sprague-Dawley rats, which may provide much inspiration for the future research of bone-tissue engineering.

摘要

随着对纳米-生物相互作用的认识不断深入和纳米材料制造方法的发展,基于纳米材料的各种治疗平台已经被开发出来,用于下一代肿瘤学应用,如骨肉瘤治疗。在这项工作中,设计并制备了一种黑磷(BP)增强的 3D 打印支架,为骨肉瘤的高效局部治疗提供了一种可行的对策。支架内 BP 纳米片的原位磷驱动、钙提取生物矿化作用既能实现骨肉瘤的光热消融,又能在生理微环境下实现随后的材料引导的骨再生,同时赋予支架独特的物理化学性质,有利于整个分步治疗过程。此外,在 Sprague-Dawley 大鼠新生颅骨组织中发现了类似于哈弗氏管的波纹结构,这可能为未来的骨组织工程研究提供很多启示。

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