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基于目标驱动的自反馈纸基光电化学传感平台,用于具有 InS/WO 异质结结构的赭曲霉毒素 A 的超灵敏检测。

A Target-Driven Self-Feedback Paper-Based Photoelectrochemical Sensing Platform for Ultrasensitive Detection of Ochratoxin A with an InS/WO Heterojunction Structure.

机构信息

School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, P. R. China.

Institute for Advanced Interdisciplinary Research, University of Jinan, Jinan 250022, P. R. China.

出版信息

Anal Chem. 2022 Jan 25;94(3):1705-1712. doi: 10.1021/acs.analchem.1c04259. Epub 2022 Jan 11.

Abstract

Currently, developing versatile, easy-to-operate, and effective signal amplification strategies hold great promise in photoelectrochemical (PEC) biosensing. Herein, an ultrasensitive polyvinylpyrrolidone-treated InS/WO (InS-P/WO)-functionalized paper-based PEC sensor was established for sensing ochratoxin A (OTA) based on a target-driven self-feedback (TDSF) mechanism enabled by a dual cycling tactic of PEC chemical-chemical (PECCC) redox and exonuclease III (Exo III)-assisted complementary DNA. The InS-P/WO heterojunction structure with 3D open-structure and regulable topology was initially in situ grown on Au nanoparticle-functionalized cellulose paper, which was served as a universal signal transducer to directly record photocurrent signals without complicated electrode modification, endowing the paper chip with admirable anti-interference ability and unexceptionable photoelectric conversion efficiency. With the assistance of Exo III-assisted cycling process, a trace amount of OTA could trigger substantial signal reporter ascorbic acid (AA) generated by the enzymatic catalysis of alkaline phosphatase, which could effectively provoke the PECCC redox cycling among the tris(2-carboxyethyl)phosphine acid, AA, and ferrocenecarboxylic at the InS-P/WO photoelectrode, initiating TDSF signal amplification. Based on the TDSF process induced by the Exo III-assisted recycling and PECCC redox cycling strategy, the developed paper-based PEC biosensor realized ultrasensitive determination of OTA with persuasive selectivity, high stability, and excellent reproducibility. It is believed that the proposed paper-based PEC sensing platform exhibited enormous potential for the detection of other targets in bioanalysis and clinical diagnosis.

摘要

目前,开发多功能、易操作、有效的信号放大策略在光电化学(PEC)生物传感中具有很大的应用前景。本文基于双循环PEC 化学-化学(PECCC)氧化还原和外切酶 III(Exo III)辅助互补 DNA 的目标驱动自反馈(TDSF)机制,建立了一种超灵敏的聚乙烯吡咯烷酮处理的 InS/WO(InS-P/WO)功能化基于纸的 PEC 传感器,用于检测赭曲霉毒素 A(OTA)。InS-P/WO 异质结结构具有 3D 开放式结构和可调节拓扑结构,最初在金纳米粒子功能化纤维素纸上原位生长,用作通用信号转换器,无需复杂的电极修饰即可直接记录光电流信号,赋予纸芯片出色的抗干扰能力和无可挑剔的光电转换效率。在 Exo III 辅助循环过程的辅助下,痕量的 OTA 可以触发碱性磷酸酶酶催化产生的大量信号报告分子抗坏血酸(AA),这可以有效地引发三(2-羧乙基)膦酸、AA 和二茂铁羧酸在 InS-P/WO 光电电极之间的 PECCC 氧化还原循环,引发 TDSF 信号放大。基于 Exo III 辅助循环和 PECCC 氧化还原循环策略诱导的 TDSF 过程,开发的基于纸张的 PEC 生物传感器实现了对 OTA 的超灵敏检测,具有令人信服的选择性、高稳定性和出色的重现性。相信所提出的基于纸张的 PEC 传感平台在生物分析和临床诊断中检测其他目标方面具有巨大的潜力。

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