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双向电化学发光传感:在 miRNA-141 检测中的应用。

Bidirectional Electrochemiluminescent Sensing: An Application in Detecting miRNA-141.

机构信息

State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering , Nanjing University , Nanjing 210023 , China.

出版信息

Anal Chem. 2019 Sep 17;91(18):12000-12005. doi: 10.1021/acs.analchem.9b02914. Epub 2019 Aug 23.

Abstract

This paper describes a bidirectional electrochemiluminescence (ECL) biosensor for the detection of microRNA-141 (miRNA-141) with aM level detection limit and two-segment 8 orders of magnitude linear range. Hemin/G-quadruplex DNAzyme was assembled on carbon nitride nanosheets and Au nanoparticles modified electrode. The ECL of carbon nitride nanosheets could be enhanced by the right amount of HO (no more than 10 mM) and then inhibited by excessive HO when 0.1 M KSO acted as coreactant. In the presence of excessive HO (20 mM), a recovery of ECL intensity was obtained due to the catalytic reduction of HO caused by hemin/G-quadruplex DNAzyme at lower target concentrations, and then an ECL decrease occurred mainly by biocatalytic precipitation (BCP)-induced charge transfer resistance on the electrode surface at higher target concentrations. Therefore, based on the change of the ECL intensity caused by the catalytic reduction of HO and BCP, a highly sensitive bidirectional miRNA sensor with ultralow detection limit of 7.9 aM and wide linear range from 10 to 10 M was obtained. This work could attract more attention on the study of multiple mechanisms and also provides a more sensitive and precise method for the analysis of nucleic acids.

摘要

本文构建了一种基于双电化学发光(ECL)的生物传感器,用于检测 microRNA-141(miRNA-141),其检测限低至 aM 级,线性范围可达两个数量级 8 个阶。在氮化碳纳米片和修饰有金纳米粒子的电极上组装了血红素/G-四链体 DNA 酶。适量的 HO(不超过 10 mM)可以增强氮化碳纳米片的 ECL,而当 0.1 M KSO 作为共反应物时,过量的 HO 会抑制 ECL。在过量 HO(20 mM)存在的情况下,由于较低靶浓度下血红素/G-四链体 DNA 酶催化还原 HO 引起的 ECL 强度恢复,然后在较高靶浓度下主要通过生物催化沉淀(BCP)诱导的电极表面电荷转移电阻导致 ECL 下降。因此,基于 HO 催化还原和 BCP 引起的 ECL 强度变化,构建了一种具有超低检测限(7.9 aM)和从 10 到 10 M 宽线性范围的高灵敏双向 miRNA 传感器。这项工作可以吸引更多人关注多种机制的研究,也为核酸分析提供了一种更灵敏、更精确的方法。

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