DNA Tile and Invading Stacking Primer-Assisted CRISPR–Cas12a Multiple Amplification System for Entropy-Driven Electrochemical Detection of MicroRNA with Tunable Sensitivity

化学 堆积 清脆的 DNA 瓦片 底漆(化妆品) 小RNA 灵敏度(控制系统) 计算生物学 纳米技术 生物化学 材料科学 基因 艺术 有机化学 视觉艺术 工程类 生物 电子工程
作者
Huan Wang,Yan Lei Li,Ya Jie Fan,Jiang Xue Dong,Xiang Ren,Hongmin Ma,Dan Wu,Zhong Feng Gao,Qin Wei,Fan Xia
出处
期刊:Analytical Chemistry [American Chemical Society]
卷期号:95 (36): 13659-13667 被引量:38
标识
DOI:10.1021/acs.analchem.3c02603
摘要

Conventional electrochemical detection of microRNA (miRNA) encounters issues of poor sensitivity and fixed dynamic range. Here, we report a DNA tile and invading stacking primer-assisted CRISPR-Cas12a multiple amplification strategy to construct an entropy-controlled electrochemical biosensor for the detection of miRNA with tunable sensitivity and dynamic range. To amplify the signal, a cascade amplification of the CRISPR-Cas12a system along with invading stacking primer signal amplification (ISPSA) was designed to detect trace amounts of miRNA-31 (miR-31). The target miR-31 could activate ISPSA and produce numerous DNAs, triggering the cleavage of the single-stranded linker probe (LP) that connects a methylene blue-labeled DNA tile with a DNA tetrahedron to form a Y-shaped DNA scaffold on the electrode. Based on the decrease of current, miR-31 can be accurately and efficiently detected. Impressively, by changing the loop length of the LP, it is possible to finely tune the entropic contribution while keeping the enthalpic contribution constant. This strategy has shown a tunable limit of detection for miRNA from 0.31 fM to 0.56 pM, as well as a dynamic range from ∼2200-fold to ∼270,000-fold. Moreover, it demonstrated satisfactory results in identifying cancer cells with a high expression of miR-31. Our strategy broadens the application of conventional electrochemical biosensing and provides a tunable strategy for detecting miRNAs at varying concentrations.
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