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MOF-on-MOF 衍生异质结构上 AgI 的生物转化:用于神经元特异性烯醇化酶的极性可切换光电化学生物传感器。

Biological Transformation of AgI on MOF-on-MOF-Derived Heterostructures: Toward Polarity-Switchable Photoelectrochemical Biosensors for Neuron-Specific Enolase.

机构信息

Department of Clinical Laboratory, Taizhou Central Hospital (Taizhou University Hospital), Taizhou University, Taizhou 318000, China.

School of Pharmaceutical and Chemical Engineering, Taizhou University, Taizhou 318000, China.

出版信息

Anal Chem. 2023 Jun 13;95(23):9052-9059. doi: 10.1021/acs.analchem.3c01401. Epub 2023 May 30.

Abstract

The sensitive detection of neuron-specific enolase (NSE) as a biomarker for lung cancer at an early stage is critical but has long been a challenge. The emergence of polarity-switchable photoelectrochemical (PEC) bioanalysis has opened up new avenues for developing highly sensitive NSE sensors. In this study, we present such a biosensor depending on the bioinduced AgI transition on MOF-on-MOF-derived semiconductor heterojunctions. Specifically, treatment of ZnO@InO@AgI by bioproduced HS can in situ generate the ZnO@InO@InS@AgS heterojunction, with the photocurrent switching from the cathodic to anodic one due to the changes in the carrier transfer pathway. Linking an NSE-targeted sandwich immunorecognition with labeled alkaline phosphatase (ALP) catalyzed generation of HS, such a phenomenon was correlated to NSE concentration with good performance in terms of selectivity and sensitivity and a low detection limit of 0.58 pg/mL. This study offered a new perspective on the use of MOF-on-MOF-derived heterostructures for advanced polarity-switchable PEC bioanalysis.

摘要

早期肺癌中神经元特异性烯醇化酶(NSE)作为生物标志物的灵敏检测至关重要,但长期以来一直是一个挑战。极性可切换光电化学(PEC)生物分析的出现为开发高灵敏度的 NSE 传感器开辟了新途径。在本研究中,我们提出了这样一种基于 MOF-on-MOF 衍生半导体异质结上生物诱导的 AgI 转变的生物传感器。具体而言,通过生物产生的 HS 处理 ZnO@InO@AgI 可以原位生成 ZnO@InO@InS@AgS 异质结,由于载流子转移途径的变化,光电流从阴极切换到阳极。将 NSE 靶向夹心免疫识别与标记的碱性磷酸酶(ALP)催化生成的 HS 相结合,这种现象与 NSE 浓度相关,具有良好的选择性和灵敏度,检测限低至 0.58pg/mL。本研究为 MOF-on-MOF 衍生异质结构在先进的极性可切换 PEC 生物分析中的应用提供了新的视角。

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