Entropy-driven three-dimensional DNA nanofireworks for simultaneous real-time imaging of telomerase and microRNA in living cells

Date

2023-02-15

Supervisor/s

Journal Title

Journal ISSN

Volume Title

Publisher

American Chemical Society

Department

Type

Article

ISSN

0003-2700

Format

Free to read from

Citation

Wang J, Wang K, Peng H, et al., (2023) Entropy-driven three-dimensional DNA nanofireworks for simultaneous real-time imaging of telomerase and microRNA in living cells. Analytical Chemistry, Volume 95, Issue 8, February 2023, pp. 4138-4146

Abstract

Real-time monitoring of different types of intracellular tumor-related biomarkers is of key importance for the identification of tumor cells. However, it is hampered by the low abundance of biomarkers, inefficient free diffusion of reactants, and complex cytoplasmic milieu. Herein, we present a stable and general method for in situ imaging of microRNA-21 and telomerase utilizing simple highly integrated dual tetrahedral DNA nanostructures (TDNs) that can naturally enter cells, which could initiate to form the three-dimensional (3D) higher-order DNA superstructures (DNA nanofireworks, DNFs) through a reliable target-triggered entropy-driven strand displacement reaction in living cells for remarkable signal amplification. Importantly, the excellent biostability, biocompatibility, and sensitivity of this approach benefited from (i) the precise multidirectional arrangement of probes with a pure DNA structure and (ii) the local target concentration enhanced by the spatially confined microdomain inside the DNFs. This strategy provides a pivotal molecular toolbox for broad applications such as biomedical imaging and early precise cancer diagnosis.

Description

Software Description

Software Language

Github

Keywords

Real-time monitoring, Signal amplification, Biosensor, Tetrahedral DNA nanostructure, Telomerase, MicroRNA

DOI

Rights

Attribution-NonCommercial 4.0 International

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