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基于聚合物水凝胶中双齿配体稳定的铜纳米簇强烈聚集诱导电化学发光的超灵敏微小RNA生物传感器。

Ultra-Sensitive MicroRNA Biosensor Based on Strong Aggregation-Induced Electrochemiluminescence from Bidentate Ligand-Stabilized Copper Nanoclusters in Polymer Hydrogel.

作者信息

Zhu Xin, Liu Linlei, Cao Weiwei, Yuan Ruo, Wang Haijun

机构信息

Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University), Ministry of Education, College of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, PR China.

出版信息

Anal Chem. 2023 Apr 4;95(13):5553-5560. doi: 10.1021/acs.analchem.2c04565. Epub 2023 Mar 22.

DOI:10.1021/acs.analchem.2c04565
PMID:36947675
Abstract

Herein, dihydrolipoic acid (DHLA)-stabilized copper nanoclusters (Cu NCs) with high aggregation-induced electrochemiluminescence (AIECL) in polymer hydrogel were prepared to construct an ECL biosensor for detection of microRNA-21. DHLA, a small molecule ligand with two sulfhydryl groups, was used as a protective agent to synthesize Cu NCs, which improved the ECL stability and intensity of Cu NCs. Furthermore, the Cu NCs were loaded into the (PVP-PVA)hydrogel to form the DHLA-Cu NCs@(PVP-PVA)hydrogel composite, which showed effective AIECL performance. The confinement of Cu NCs into the hydrogel increased the local concentration of Cu NCs, which could not only prevent oxides from entering the copper core, but also limit the vibration to reduce non-radiative transitions of Cu NCs, leading to a distinct AIECL emission. Then, combined with the self-priming clip trigger isothermal amplification (SCTIA) technology, an ECL biosensor was constructed to realize the sensitive detection of miRNA-21. Interestingly, SCTIA technology was a simple and efficient strategy that realized multiple-cycle amplified processes to acquire a mass of output DNA, achieving remarkable signal amplification. Therefore, this strategy provided an efficient approach in the preparation of Cu NCs with high AIECL emission and target amplification technology, which might have promising potential in clinical application.

摘要

在此,制备了在聚合物水凝胶中具有高聚集诱导电化学发光(AIECL)的二氢硫辛酸(DHLA)稳定的铜纳米簇(Cu NCs),以构建用于检测微小RNA-21的电化学发光生物传感器。DHLA是一种具有两个巯基的小分子配体,用作保护剂来合成Cu NCs,提高了Cu NCs的电化学发光稳定性和强度。此外,将Cu NCs负载到(PVP-PVA)水凝胶中形成DHLA-Cu NCs@(PVP-PVA)水凝胶复合材料,其表现出有效的AIECL性能。将Cu NCs限制在水凝胶中增加了Cu NCs的局部浓度,这不仅可以防止氧化物进入铜核,还可以限制振动以减少Cu NCs的非辐射跃迁,从而导致明显的AIECL发射。然后,结合自引发夹触发等温扩增(SCTIA)技术,构建了一种电化学发光生物传感器,以实现对miRNA-21的灵敏检测。有趣的是,SCTIA技术是一种简单有效的策略,可实现多循环扩增过程以获得大量输出DNA,实现显著的信号放大。因此,该策略为制备具有高AIECL发射的Cu NCs和靶标扩增技术提供了一种有效方法,在临床应用中可能具有广阔的潜力。

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