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用于成像引导核内放射增敏的智能亚50纳米核靶向纳米诊疗系统的设计

Design of an intelligent sub-50 nm nuclear-targeting nanotheranostic system for imaging guided intranuclear radiosensitization.

作者信息

Fan Wenpei, Shen Bo, Bu Wenbo, Zheng Xiangpeng, He Qianjun, Cui Zhaowen, Zhao Kuaile, Zhang Shengjian, Shi Jianlin

机构信息

State Key Laboratory of High Performance Ceramics and Superfine Microstructures , Shanghai Institute of Ceramics , Chinese Academy of Sciences , Shanghai , 200050 , P. R. China . Email:

Institute of Radiation Medicine , Fudan University , Shanghai , 200032 , P. R. China.

出版信息

Chem Sci. 2015 Mar 1;6(3):1747-1753. doi: 10.1039/c4sc03080j. Epub 2014 Dec 12.

Abstract

Clinically applied chemotherapy and radiotherapy is sometimes not effective due to the limited dose acting on DNA chains resident in the nuclei of cancerous cells. Herein, we develop a new theranostic technique of "intranuclear radiosensitization" aimed at directly damaging the DNA within the nucleus by a remarkable synergetic chemo-/radiotherapeutic effect based on intranuclear chemodrug-sensitized radiation enhancement. To achieve this goal, a sub-50 nm nuclear-targeting rattle-structured upconversion core/mesoporous silica nanotheranostic system was firstly constructed to directly transport the radiosensitizing drug Mitomycin C (MMC) into the nucleus for substantially enhanced synergetic chemo-/radiotherapy and simultaneous magnetic/upconversion luminescent (MR/UCL) bimodal imaging, which can lead to efficient cancer treatment as well as multi-drug resistance circumvention and . We hope the technique of intranuclear radiosensitization along with the design of nuclear-targeting nanotheranostics will contribute greatly to the development of cancer theranostics as well as to the improvement of the overall therapeutic effectiveness.

摘要

由于作用于癌细胞核内DNA链的剂量有限,临床应用的化疗和放疗有时并不有效。在此,我们开发了一种新的“核内放射增敏”治疗诊断技术,旨在通过基于核内化学药物增敏的辐射增强的显著协同化学/放射治疗效果,直接损伤细胞核内的DNA。为实现这一目标,首先构建了一种尺寸小于50nm的核靶向摇铃结构上转换核/介孔二氧化硅纳米治疗诊断系统,以将放射增敏药物丝裂霉素C(MMC)直接输送到细胞核中,从而大幅增强协同化学/放射治疗效果,并同时进行磁/上转换发光(MR/UCL)双模态成像,这可实现高效的癌症治疗以及多药耐药规避。我们希望核内放射增敏技术以及核靶向纳米治疗诊断系统的设计将极大地促进癌症治疗诊断学的发展,并提高整体治疗效果。

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