| Literature DB >> 34074408 |
Min Qing1, Sheng Liang Chen1, Jiao Zhou1, Hong Qun Luo2, Nian Bing Li3.
Abstract
Herein, we construct an ingenious spatially localized amplification reaction (SLAR) by colocalizing the entropy-driven reaction (EDR) in a nanometer space, which greatly accelerates target conversion and realizes the sensitive detection of microRNA-21 (miRNA-21). A large number of EDR complex are hybridized with the prefabricated DNA scaffold via a DNA self-assembly strategy to form the SLAR nanoprobe. Target miRNA-21 triggers interval EDR along the long DNA scaffold, resulting in fluorescence recovery with high signal gain because of the fast release of reporter. Compared with reactions with diffusible components, spatial arrangement of all components of EDR on a nanoscale scaffold can increase the local concentration of reactants, accelerating the interaction between adjacent components, and can also avoid the influence of stochastic diffusion to reduce the unintentional binding interaction between further separated components. Therefore, this SLAR assay displayed an excellent analytical performance for miRNA-21 detection with a detection limit of 6 pM and showed good specificity in distinguishing miRNA-21 from similar miRNAs. In addition, the proposed assay has been experimentally demonstrated for estimation of miRNA-21 in MCF-7 and HeLa cells lysates, which exhibited great promise in the sensitive detection of biomarkers in early diagnosis.Entities:
Keywords: Entropy-driven reaction; Fluorescence assay; MicroRNA; Spatial-confinement effects; Spatially localized amplification reaction
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Year: 2021 PMID: 34074408 DOI: 10.1016/j.talanta.2021.122422
Source DB: PubMed Journal: Talanta ISSN: 0039-9140 Impact factor: 6.057