4.7 Article

A highly-efficient 3D DNAzyme motor for sensitive biosensing analysis

Journal

TALANTA
Volume 250, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.talanta.2022.123683

Keywords

3D DNAzyme motor; DNAzyme nanowires; DNAzyme-amplified detection strategy; Electrochemical biosensing; DNA detection

Funding

  1. National Natural Science Foundation of China [21904108, 21775124]
  2. Fundamental Research Funds for the Central Universities [XDJK2018AA003]

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A novel 3D DNAzyme motor was designed for sensitive detection of target DNA. It overcame the limitations of traditional DNAzyme-powered machines and provided a reference for assembling various functional 3D DNA machines in the future.
Herein, driven by the need of highly-efficient DNAzyme-amplified detection strategy, a novel 3D DNAzyme motor was designed as a biosensor platform for realizing sensitive detection of target DNA. The 3D DNAzyme motor was composed of target-activated DNAzyme nanowires and substrates H1-Fc that co-immobilized on Au@Fe3O4 nanoparticles (Au@Fe(3)O4NPS) surface, possessing high local concentration of DNA reactants and shortened distance between DNAzyme and substrates for enhancing electrochemical signal. Compared with traditional DNAzyme-powered machines, the target-activated DNAzyme nanowires of 3D DNAzyme motor had greater flexibility and more powerful cleavage capability without troublesome sequence optimization, which overcame the space limitation and simultaneously interacted with adjacent and distant substrates H1-Fc to output a large amount of cleavage products with high signal response. Therefore, on account of the above mentioned merits of nanoparticles localization DNA design and DNAzyme nanowires, the reported 3D DNAzyme motor ingeniously overcame many defects existing in traditional DNAzyme-amplified detection strategies such as low reactants concentration, limited flexibility of DNAzyme and small DNAzyme swing range, realizing the sensitive detection of target DNA with a detection limit of 1.7 fM ranging from 5 fM to 50 nM. Impressively, the 3D DNAzyme motor here presented a new strategy to achieve effective DNAzyme signal amplification and provided a reference for the assembly of various and functional 3D DNA machines in the future.

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