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通过铁掺杂和氧空位工程增强压电钨酸铋纳米片的声动力学癌症治疗。

Enhanced Sonodynamic Cancer Therapy through Iron-Doping and Oxygen-Vacancy Engineering of Piezoelectric Bismuth Tungstate Nanosheets.

机构信息

Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing, 101400, P. R. China.

Center on Nanoenergy Research, School of Physical Science and Technology, Guangxi University, Nanning, 530004, P. R. China.

出版信息

Small. 2023 Jun;19(24):e2300327. doi: 10.1002/smll.202300327. Epub 2023 Mar 15.

Abstract

Sonodynamic therapy (SDT) is regarded as a new-rising strategy for cancer treatment with low invasiveness and high tissue penetration, but the scarcity of high-efficiency sonosensitizers has seriously hindered its application. Herein, the iron-doped and oxygen-deficient bismuth tungstate nanosheets (BWO-Fe NSs) with piezotronic effect are synthesized for enhanced SDT. Due to the existence of oxygen defects introduced through Fe doping, the bandgap of BWO-Fe is significantly narrowed so that BWO-Fe can be more easily activated by exogenous ultrasound (US). The oxygen defects acting as the electron traps inhibit the recombination of US-induced electrons and holes. More importantly, the dynamically renewed piezoelectric potential facilitates the migration of electrons and holes to opposite side and causes energy band bending, which further promotes the production of reactive oxygen species. Furthermore, Fe doping endows BWO-Fe with Fenton reactivity, which converts hydrogen peroxide (H O ) in tumor microenvironment into hydroxyl radicals (•OH), thereby amplifying the cellular oxidative damage and enhancing SDT. Both in vitro and in vivo experiments illustrate their high cytotoxicity and tumor suppression rate against refractory breast cancer in mice. This work may provide an alternative strategy to develop oxygen-deficient piezoelectric sonosensitizers for enhanced SDT via doping metal ions.

摘要

声动力学疗法 (SDT) 被认为是一种具有低侵入性和高组织穿透性的新型癌症治疗策略,但高效声敏剂的缺乏严重限制了其应用。在此,我们合成了具有压电效应的铁掺杂和氧缺陷的钨酸铋纳米片 (BWO-Fe NSs) 以增强 SDT。由于通过 Fe 掺杂引入的氧缺陷,BWO-Fe 的能带隙显著变窄,使得 BWO-Fe 更容易被外源性超声 (US) 激活。氧缺陷作为电子陷阱抑制了 US 诱导的电子和空穴的复合。更重要的是,动态更新的压电电势促进电子和空穴向相反侧迁移并引起能带弯曲,从而进一步促进活性氧的产生。此外,Fe 掺杂赋予 BWO-Fe 类芬顿反应性,将肿瘤微环境中的过氧化氢 (H 2 O 2 ) 转化为羟基自由基 (•OH),从而放大细胞氧化损伤并增强 SDT。体外和体内实验均表明,它们对小鼠难治性乳腺癌具有高细胞毒性和肿瘤抑制率。这项工作可能为通过掺杂金属离子开发用于增强 SDT 的氧缺陷压电声敏剂提供了一种替代策略。

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