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首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >Site-specific sonocatalytic tumor suppression by chemically engineered single-crystalline mesoporous titanium dioxide sonosensitizers
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Site-specific sonocatalytic tumor suppression by chemically engineered single-crystalline mesoporous titanium dioxide sonosensitizers

机译:通过化学工程化单晶介亚碘钛二氧化物超声胶囊抑制剂的特异性同胞催化肿瘤抑制

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摘要

The biomedical applications of TiO2-based nanosystems develop very slowly among diverse inorganic bio-nanosystems (e.g., Fe3O4, SiO2, MnO, Au, etc.) due to the lack of adequate synthetic strategies to fabricate TiO2 nanoparticles with desirable nanostructures and their specific light responses in the ultraviolet range with potential phototoxicity and low tissue-penetrating capability. In this work, we report on the rational design and fabrication of colloidal single-crystalline and mesoporous anatase TiO2 nanoparticles (MTNs) with high dispersity, well-defined mesoporosity, uniform morphology and nanosized single-crystalline structure, employing a facile yet versatile bottom-up chemical strategy, i.e., pre-hydrolysis of titanium precursors combined with subsequent solvothermal treatment (PH-ST) simply using water as the additive. Highly biocompatible PEGylated MTNs have exerted their unique function as efficient sonosensitizers for sonodynamic therapy (SDT) of cancer, as systematically demonstrated both in vitro and in vivo. The production of reactive oxygen species (ROS) by MTN-sonosensitized SDT has been demonstrated to be the mechanism for efficient tumor SDT. The in vivo biocompatibility assay revealed that either a single dose at 150 mg kg(-1) or repeated doses at as high as a total of 400 mg kg(-1) exhibited no obvious in vivo toxicity. The ultrasound irradiation of MTNs in SDT is expected to break the depth shadow of light responsiveness of TiO2-based nanosystems in the ultraviolet range, and the presence of well-defined mesoporous nanostructures of MTNs shows great potential for the delivery of therapeutic agents for combined cancer therapy.
机译:基于TiO2的纳米系统的生物医学应用由于缺乏足够的合成策略来制造具有理想的纳米结构及其特定光的TiO 2纳米颗粒,因此缺乏多种无机生物纳米系统(例如Fe 3 O 4,SiO 2,MNO等)中的慢速发展。紫外线范围内的反应具有潜在的光毒性和低组织穿透能力。在这项工作中,我们报告了具有高分散性,明确的中渗透性,均匀的形态和纳米晶体结构的胶体单晶和中孔锐钛矿TiO2纳米颗粒(MTN)的合理设计和制备,采用舒适但多功能的底部 - 化学策略,即钛前体的预水解与随后的溶剂热处理(pH-ST)结合使用水作为添加剂。高度生物相容性的PEG化MTNS施加了它们作为癌症的高效超声胶质剂(SDT)的有效超声胶质剂的独特功能,如体外和体内系统地证明。通过MTN-超声溶解的SDT的活性氧物质(ROS)的生产已被证明是有效肿瘤SDT的机制。体内生物相容性测定表明,在150mg kg(-1)或重复剂量下的单剂量在高度为400mg kg(-1)中表现出在体内毒性的明显。预计SDT中MTN的超声波照射预计会破坏紫外线范围内TiO2的纳米系统的光反应性的深度阴影,并且MTN的明确定义的介孔纳米结构的存在显示出癌症治疗剂的潜力很大治疗。

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    Fudan Univ Dept Ultrasound Zhongshan Hosp 180 Feng Lin Rd Shanghai 200032 Peoples R China;

    Fudan Univ Dept Ultrasound Zhongshan Hosp 180 Feng Lin Rd Shanghai 200032 Peoples R China;

    Chinese Acad Sci Shanghai Inst Ceram State Key Lab High Performance Ceram &

    Superfine 1295 Ding Xi Rd Shanghai 200050 Peoples R China;

    Shanghai Inst Med Imaging 180 Feng Lin Rd Shanghai 200032 Peoples R China;

    Fudan Univ Dept Ultrasound Zhongshan Hosp 180 Feng Lin Rd Shanghai 200032 Peoples R China;

    Chinese Acad Sci Shanghai Inst Ceram State Key Lab High Performance Ceram &

    Superfine 1295 Ding Xi Rd Shanghai 200050 Peoples R China;

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  • 正文语种 eng
  • 中图分类 分析化学;
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