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工程二维硅烯复合纳米片用于双重敏化和光热增强癌症放射治疗。

Engineering two-dimensional silicene composite nanosheets for dual-sensitized and photonic hyperthermia-augmented cancer radiotherapy.

机构信息

Department of Ultrasound in Medicine, Shanghai Tenth People's Hospital, Tongji University, Shanghai, 200072, China.

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

出版信息

Biomaterials. 2021 Feb;269:120455. doi: 10.1016/j.biomaterials.2020.120455. Epub 2020 Oct 16.

Abstract

The rapid development of nanotechnology has triggered the emerging of tremendous theranostic nanoplatforms for combating cancers. Silicene, as an emerging two-dimensional (2D) material, has been recently explored as therapeutic agent due to their desirable biodegradation and strong photothermal-conversion performance. However, the rational design of silicene-based composites for further exerting multifunctional medical applications is still highly challenging. Herein, we report on the construction of silicene-based silicene@Pt composite nanosheets for computed tomography (CT)/photoacoustic (PA) imaging-guided dual-sensitized radiotherapy combined with photonic tumor hyperthermia, which has been achieved by a seed-growth approach to in situ grow Pt components onto silicene nanosheets' surface. Especially, by functionalization of Pt components, these nanosheets could act as both contrast agents for CT imaging and dual radio-sensitizing agents for radiotherapy, which could deposit Pt-involved radiation energy (sensitized therapeutic process I) and overcome hypoxia-associated radio-resistance by Pt-catalytic O generation from overexpressed HO within the tumor microenvironment (sensitized therapeutic process II). The strong photothermal-conversion performance of silicene nanosheets not only endowed silicene@Pt composite nanosheets with photoacoustic imaging property, but also realized the photonic tumor hyperthermia and achieved a combined therapeutic effect with radiotherapy. This work not only broadens the biomedical applications of silicene, but also develops functionalization strategies of silicene for versatile biomedical applications.

摘要

纳米技术的快速发展引发了大量治疗癌症的新兴治疗学纳米平台的出现。硅烯作为一种新兴的二维(2D)材料,由于其理想的生物降解性和强光热转换性能,最近被探索作为治疗剂。然而,合理设计基于硅烯的复合材料以进一步发挥多功能医学应用仍然极具挑战性。在此,我们报告了通过种子生长法在硅烯纳米片表面原位生长 Pt 组分,构建了用于计算机断层扫描(CT)/光声(PA)成像引导的双敏放疗联合光热治疗的基于硅烯的硅烯@Pt 复合纳米片。特别是,通过 Pt 组分的功能化,这些纳米片可以用作 CT 成像的对比剂和放疗的双重放射增敏剂,这可以沉积涉及 Pt 的辐射能(敏化治疗过程 I),并通过肿瘤微环境中过表达的 HO 催化产生的 Pt 催化 O 来克服缺氧相关的放射抗性(敏化治疗过程 II)。硅烯纳米片的强光热转换性能不仅赋予了硅烯@Pt 复合纳米片光声成像特性,而且实现了光热肿瘤治疗,并与放疗实现了联合治疗效果。这项工作不仅拓宽了硅烯的生物医学应用,而且还开发了硅烯的功能化策略,以实现多种生物医学应用。

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