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利用酸引发的可重构DNA纳米装置原位调节DNAzyme活性及内化行为用于可激活的诊疗

In Situ Modulating DNAzyme Activity and Internalization Behavior with Acid-Initiated Reconfigurable DNA Nanodevice for Activatable Theranostic.

作者信息

Lei Yanli, Tang Jinlu, He Xiaoxiao, Shi Hui, Zeng Yu, Sun Haiyan, Wang Kemin

机构信息

Hunan Provincial Key Laboratory of Cytochemistry, School of Chemistry and Food Engineering, Changsha University of Science and Technology, Changsha, 410114, People's Republic of China.

State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, College of Biology, Hunan University, Key Laboratory for Bio-Nanotechnology and Molecular Engineering of Hunan Province, Changsha, 410082, People's Republic of China.

出版信息

Anal Chem. 2021 Apr 6;93(13):5629-5634. doi: 10.1021/acs.analchem.1c00426. Epub 2021 Mar 29.

Abstract

DNAzyme-mediated gene silencing was still challenged by off-target toxicity. In this study, we developed a split DNAzyme-based nanodevice (sDz-ND) that leveraged acidic tumor microenvironments to drive in situ assembly, thus modulating internalization behavior and silencing activity of DNAzymes. sDz-ND consisted of two different modules, which functionalized with split DNAzyme fragments, respectively. At psychological pH (∼7.4), the two modules were monodispersed, showing cleavage anergy and quenched fluorescence. At pH 6.3, the separated modules could cross-link with each other to form integrated sDz-ND, resulting activation of theranostic function. Meanwhile, the increased particle size and acquired multivalent effect favored 2.1-fold enhanced binding ability, which further facilitated rapid endocytosis of sDz-ND into target cancer cells, then allowing DNAzyme mediated gene silencing. The strategy provides a promising and general concept for precise tumor imaging and gene therapy.

摘要

DNA酶介导的基因沉默仍受到脱靶毒性的挑战。在本研究中,我们开发了一种基于分裂DNA酶的纳米装置(sDz-ND),该装置利用酸性肿瘤微环境驱动原位组装,从而调节DNA酶的内化行为和沉默活性。sDz-ND由两个不同的模块组成,分别用分裂的DNA酶片段进行功能化。在生理pH值(约7.4)下,这两个模块呈单分散状态,显示出切割无能和荧光淬灭。在pH 6.3时,分离的模块可以相互交联形成完整的sDz-ND,从而激活诊疗功能。同时,粒径的增加和获得的多价效应使结合能力提高了2.1倍,这进一步促进了sDz-ND快速内吞进入靶癌细胞,进而实现DNA酶介导的基因沉默。该策略为精确的肿瘤成像和基因治疗提供了一个有前景的通用概念。

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