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用于化学/光动力疗法及成像的近红外光介导的DOX-UCNPs@mHTiO纳米复合材料

Near-infrared light-mediated DOX-UCNPs@mHTiO nanocomposite for chemo/photodynamic therapy and imaging.

作者信息

Chen Yuhua, Lin Huiming, Tong Ruihan, An Na, Qu Fengyu

机构信息

College of Chemistry and Chemical Engineering, Harbin Normal University, Harbin, 150025, PR China.

College of Chemistry and Chemical Engineering, Harbin Normal University, Harbin, 150025, PR China.

出版信息

Colloids Surf B Biointerfaces. 2017 Jun 1;154:429-437. doi: 10.1016/j.colsurfb.2017.03.026. Epub 2017 Mar 18.

Abstract

Recently, incorporating multiple components into one nanoplatform for anticancer theranostics has attracted most attention. Herein, a rattle-structured nanocomposite by using UCNPs (NaYF:Yb,Tm@NaYF) as core coated with hollow mesoporous TiO (UCNPs@mHTiO) was constructed as the nanocarrier. First, UCNPs@SiO@TiO was prepared, by a selective etching method to remove SiO shell, to make sure the hollow mesoporous structure and high surface area (347mg) of UCNPs@mHTiO. Under near-infrared (NIR) light irradiation, the UV emission can excite TiO to produce ROS and to realize photodynamic therapy (PDT). In addition, the hollow structure offers space to store antitumor drug molecules (doxorubicin, DOX) and this nanocomposite also exhibits the improved DOX release in mildly acidic environment, which could greatly promote chemotherapy efficiency. Moreover, the luminescence resonance energy transfer (LRET) from UCNPs to DOX, owing to the effective distance restricted by the cavity, can be used to monitor the intercellular drug release kinetics. HeLa cells were used as the model cancer cells and the detailed cell experiments show the enhanced cytotoxicity, ascribing to the synergistic effect of chemotherapy and PDT. Therefore, the novel multifunctional nanocomposite, combining with chemotherapy, PDT, and imaging, should be a potential candidate in anticancer field.

摘要

最近,将多种成分整合到一个纳米平台用于抗癌诊疗已引起了广泛关注。在此,构建了一种以UCNPs(NaYF:Yb,Tm@NaYF)为核、包覆中空介孔TiO的拨浪鼓结构纳米复合材料(UCNPs@mHTiO)作为纳米载体。首先,制备UCNPs@SiO@TiO,通过选择性蚀刻法去除SiO壳层,以确保UCNPs@mHTiO具有中空介孔结构和高比表面积(347mg)。在近红外(NIR)光照射下,紫外发射可激发TiO产生活性氧并实现光动力疗法(PDT)。此外,中空结构为储存抗肿瘤药物分子(阿霉素,DOX)提供了空间,并且这种纳米复合材料在弱酸性环境中还表现出改善的DOX释放,这可大大提高化疗效率。而且,由于空腔限制了有效距离,UCNPs到DOX的发光共振能量转移(LRET)可用于监测细胞内药物释放动力学。以HeLa细胞作为模型癌细胞,详细的细胞实验表明细胞毒性增强,这归因于化疗和PDT的协同作用。因此,这种结合了化疗、PDT和成像功能的新型多功能纳米复合材料应是抗癌领域的一个潜在候选者。

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