Spatiotemporally Programmed Disassembly of Multifunctional Integrated DNAzyme Nanoplatfrom for Amplified Intracellular MicroRNA Imaging

Author:

Zhang Qingqing123,Yu Shanshan123,Shang Jinhua123,He Shizhen123,Liu Xiaoqing123,Wang Fuan1234ORCID

Affiliation:

1. Department of Gastroenterology Zhongnan Hospital of Wuhan University Wuhan 430072 P. R. China

2. College of Chemistry and Molecular Sciences Wuhan University Wuhan 430072 P. R. China

3. Research Institute of Shenzhen Wuhan University Shenzhen 518057 P. R. China

4. Wuhan Research Center for Infectious Diseases and Cancer Chinese Academy of Medical Sciences Wuhan 430072 China

Abstract

AbstractThe sensing performance of DNAzymes in live cells is tremendously hampered by the inefficient and inhomogeneous delivery of DNAzyme probes and their incontrollable off‐site activation, originating from their susceptibility to nuclease digestion. This requires the development of a more compact and robust DNAzyme‐delivering system with site‐specific DNAzyme activation property. Herein, a highly compact and robust Zn@DDz nanoplatform is constructed by integrating the unimolecular microRNA‐responsive DNA‐cleaving DNAzyme (DDz) probe with the requisite DNAzyme Zn2+‐ion cofactors, and the amplified intracellular imaging of microRNA via the spatiotemporally programmed disassembly of Zn@DDz nanoparticles is achieved. The multifunctional Zn@DDz nanoplatform is simply composed of a structurally blocked self‐hydrolysis DDz probe and the inorganic Zn2+‐ion bridge, with high loading capacity, and can effectively deliver the initially catalytic inert DDz probe and Zn2+ into living cells with enhanced stabilities. Upon their entry into the acidic microenvironment of living cells, the self‐sufficient Zn@DDz nanoparticle is disassembled to release DDz probe and simultaneously supply Zn2+‐ion cofactors. Then, endogenous microRNA‐21 catalyzes the reconfiguration and activation of DDz for generating the amplified readout signal with multiply guaranteed imaging performance. Thus, this work paves an effective way for promoting DNAzyme‐based biosensing systems in living cells, and shows great promise in clinical diagnosis.

Funder

National Natural Science Foundation of China

Wuhan University

Shenzhen Science and Technology Innovation Program

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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