An electrochemical biosensor for detection of copper(ii) based on Fe3O4@Au magnetic nanoparticles and Cu2+-dependent DNAzyme assisted nicking endonuclease signal amplification

IF 3.3 3区 化学 Q2 CHEMISTRY, ANALYTICAL
Analyst Pub Date : 2025-08-20 DOI:10.1039/D5AN00499C
Hua Meng, Qingdi Yang, Siying Wu, Yanli Zhang, Xue Men, Hongbin Wang, Wenrong Yang and Pengfei Pang
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Abstract

Copper ions are essential elements in the human body and participate in various physiological activities in the bodies of organisms. Herein, an ultrasensitive electrochemical biosensor was developed for detection of copper ions (Cu2+) based on Fe3O4@Au magnetic nanoparticles (Fe3O4@Au MNPs) and a Cu2+-dependent DNAzyme assisted nicking endonuclease signal amplification (NESA) strategy. dsDNA is formed by a hybridization reaction between DNA S2 and S1 immobilized on the surface of Fe3O4@Au MNPs. Fe3O4@Au MNPs not only manifested the construction of a magnetically controlled electrochemically responsive interface but also served as promising scaffolds to carry DNA. In the presence of Cu2+, DNAzyme was activated and it catalyzed the cleavage of the dsDNA. The left fragment of the dsDNA on the Fe3O4@Au MNPs hybridized with DNA S3, initiating a polymerization reaction in the presence of DNA polymerase and dNTP and forming a long dsDNA product with specific recognition sites for the nicking endonuclease Nb.BbvCI. With the help of Nb.BbvCI, the long dsDNA product was cleaved to release the free ssDNA probe, which hybridized with Fc-labeled hairpin DNA S4 immobilized on a gold electrode and resulted in a decrease of the electrochemical signal. Subsequently, the remaining DNA probe on Fe3O4@Au MNPs triggered the next cycle of the “hybridization–cleavage–dissociation” reaction and more ssDNA probes dissociated, producing significant signal amplification. The developed Cu2+ electrochemical biosensor exhibited a reliable linear range of 1 pM to 10 μM with a detection limit of 0.4 pM (S/N = 3). Furthermore, the proposed assay platform can be easily extended to monitor other metal ions by using specific DNAzymes and it shows potential for promising application in environmental monitoring.

Abstract Image

基于Fe3O4@Au磁性纳米颗粒和Cu2+依赖性DNAzyme的铜(II)检测电化学生物传感器辅助nick内切酶信号扩增。
铜离子是人体必需的元素,在生物体体内参与各种生理活动。本文基于Fe3O4@Au磁性纳米颗粒(Fe3O4@Au MNPs)和Cu2+依赖DNAzyme辅助的nick核酸内切酶信号扩增(NESA)策略,开发了一种用于检测铜离子(Cu2+)的超灵敏电化学生物传感器。dsDNA是由固定在Fe3O4@Au MNPs表面的DNA S2和S1杂交反应形成的。Fe3O4@Au MNPs不仅表现出了磁控电化学响应界面的构建,而且作为携带DNA的有前途的支架。在Cu2+的存在下,DNAzyme被激活并催化了dsDNA的裂解。在Fe3O4@Au MNPs上,dsDNA的左侧片段与DNA S3杂交,在DNA聚合酶和dNTP的存在下引发聚合反应,形成一个长dsDNA产物,该产物具有对切口内切酶Nb.BbvCI的特异性识别位点。在Nb的帮助下。BbvCI,将长dsDNA产物裂解释放出游离的ssDNA探针,与固定在金电极上的fc标记的发夹DNA S4杂交,导致电化学信号减弱。随后,Fe3O4@Au MNPs上剩余的DNA探针触发下一轮“杂交-裂解-解离”反应,更多的ssDNA探针解离,产生显著的信号放大。该Cu2+电化学生物传感器具有1 ~ 10 μM的可靠线性范围,检出限为0.4 pM (S/N = 3)。此外,所提出的分析平台可以很容易地扩展到使用特定的DNAzymes来监测其他金属离子,并且在环境监测中显示出有前景的应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Analyst
Analyst 化学-分析化学
CiteScore
7.80
自引率
4.80%
发文量
636
审稿时长
1.9 months
期刊介绍: "Analyst" journal is the home of premier fundamental discoveries, inventions and applications in the analytical and bioanalytical sciences.
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