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缺氧生物陶瓷:诊断、治疗与再生的结合

Oxygen-Deficient Bioceramics: Combination of Diagnosis, Therapy, and Regeneration.

作者信息

Bigham Ashkan, Raucci Maria Grazia, Zheng Kai, Boccaccini Aldo R, Ambrosio Luigi

机构信息

Institute of Polymers, Composites and Biomaterials-National Research Council (IPCB-CNR), Viale J. F. Kennedy 54-Mostra d'Oltremare pad. 20, Naples, 80125, Italy.

Department of Chemical, Materials and Production Engineering, University of Naples Federico II, Piazzale V. Tecchio 80, Naples, 80125, Italy.

出版信息

Adv Mater. 2023 Oct;35(41):e2302858. doi: 10.1002/adma.202302858. Epub 2023 Aug 3.

Abstract

The journey of ceramics in medicine has been synchronized with an evolution from the first generation-alumina, zirconia, etc.-to the third -3D scaffolds. There is an up-and-coming member called oxygen-deficient or colored bioceramics, which have recently found their way through biomedical applications. The oxygen vacancy steers the light absorption toward visible and near infrared regions, making the colored bioceramics multifunctional-therapeutic, diagnostic, and regenerative. Oxygen-deficient bioceramics are capable of turning light into heat and reactive oxygen species for photothermal and photodynamic therapies, respectively, and concomitantly yield infrared and photoacoustic images. Different types of oxygen-deficient bioceramics have been recently developed through various synthesis routes. Some of them like TiO , MoO , and WO have been more investigated for biomedical applications, whereas the rest have yet to be scrutinized. The most prominent advantage of these bioceramics over the other biomaterials is their multifunctionality endowed with a change in the microstructure. There are some challenges ahead of this category discussed at the end of the present review. By shedding light on this recently born bioceramics subcategory, it is believed that the field will undergo a big step further as these platforms are naturally multifunctional.

摘要

陶瓷在医学领域的发展历程与从第一代(氧化铝、氧化锆等)到第三代(3D支架)的演变同步。有一种新兴的成员,即缺氧或有色生物陶瓷,它们最近在生物医学应用中崭露头角。氧空位将光吸收导向可见光和近红外区域,使有色生物陶瓷具有多功能性——治疗、诊断和再生功能。缺氧生物陶瓷能够分别将光转化为热和活性氧用于光热疗法和光动力疗法,并同时产生红外和光声图像。最近通过各种合成路线开发出了不同类型的缺氧生物陶瓷。其中一些,如TiO 、MoO 和WO,在生物医学应用方面得到了更多研究,而其他的还有待审查。这些生物陶瓷相对于其他生物材料最突出的优势在于其通过微观结构变化赋予的多功能性。本综述末尾讨论了这一类生物陶瓷面临的一些挑战。通过阐明这一最近出现的生物陶瓷子类别,相信随着这些平台天生具有多功能性这一领域将向前迈出一大步。

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