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一种具有 HRP 基放大功能的抗污界面,用于实现用于溶菌酶检测的高灵敏度电化学生物传感器。

An antifouling interface integrated with HRP-based amplification to achieve a highly sensitive electrochemical aptasensor for lysozyme detection.

机构信息

College of Chemistry and Materials Science, Editorial Department of Journal of Anhui Normal University, Anhui Normal University, Wuhu 241000, P. R. China.

出版信息

Analyst. 2019 Oct 7;144(19):5794-5801. doi: 10.1039/c9an01430f. Epub 2019 Aug 29.

Abstract

We report here a highly sensitive sandwich type electrochemical aptasensor for lysozyme (lys) detection by the integration of an antifouling interface with HRP-based signal amplification. The biosensing interface with antifouling ability is designed, consisting of a lys-binding aptamer (LBA), dithiothreitol (DTT) and mercaptohexanol (MCH). When lys is captured by the immobilized LBA due to the specific recognition of the aptamer, gold nanoparticles (AuNPs) functionalized with HRP and LBA (HRP-AuNP-LBA) are further conjugated to the surface-bound lys, forming a sandwich assay format. HRP catalyzes the chemical oxidation of hydroquinone (HQ) by hydrogen peroxide (HO) to produce benzoquinone (BQ) which results in a large electrochemical reduction signal of BQ. Therefore, this reduction signal measured by differential pulse voltammetry (DPV) is used to detect lys. The catalytic behavior of HRP toward the reaction between HQ and HO, together with the high loading of HRP on AuNPs, remarkably amplifies the signal. A linear relationship between the DPV response and the logarithm of lys concentration from 0.01 pg mL to 10 pg mL with a detection limit of 0.003 pg mL (S/N = 3) is obtained. The proposed biosensing platform combines antifouling ability and signal amplification, resulting in high sensitivity, providing an effective way for ultrasensitive assay of protein biomarkers in complex media.

摘要

我们在此报告了一种通过整合具有抗污染能力的界面与基于 HRP 的信号放大来检测溶菌酶 (lys) 的高灵敏三明治型电化学适体传感器。设计了具有抗污染能力的生物传感界面,由溶菌酶结合适体 (LBA)、二硫苏糖醇 (DTT) 和巯基己醇 (MCH) 组成。当lys 由于适体的特异性识别而被固定化的 LBA 捕获时,进一步将 HRP 功能化的金纳米粒子 (AuNPs) 和 LBA (HRP-AuNP-LBA) 连接到表面结合的 lys 上,形成三明治测定形式。HRP 催化 HQ 通过 H2O2 的化学氧化生成 BQ,导致 BQ 的电化学还原信号大大增加。因此,通过差分脉冲伏安法 (DPV) 测量的这种还原信号用于检测 lys。HRP 对 HQ 和 H2O 之间反应的催化行为以及 HRP 在 AuNPs 上的高负载量显著放大了信号。从 0.01 pg mL 到 10 pg mL 的 lys 浓度与 DPV 响应之间呈线性关系,检测限为 0.003 pg mL(S/N = 3)。所提出的生物传感平台结合了抗污染能力和信号放大,具有高灵敏度,为复杂介质中蛋白质生物标志物的超灵敏分析提供了有效途径。

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