亚铁氰化物
化学
单层
二茂铁
氧化还原
铁氰化物
聚乙二醇
PEG比率
电极
伏安法
循环伏安法
电化学
自组装单层膜
组合化学
吸附
无机化学
生物传感器
参比电极
电子转移
化学工程
表面改性
X射线光电子能谱
光化学
分析化学(期刊)
电化学气体传感器
安培法
作者
Emie Marin,Brandaise Martinez,Tessa Whitaker,Emily N. Gallichotte,Gregory D. Ebel,Yann R. Leroux,Philippe Hapiot,Charles S. Henry
标识
DOI:10.1021/acs.analchem.5c03527
摘要
Label-free electrochemical immunosensors offer a simplified approach to biomolecular detection by directly monitoring antigen-antibody interactions at the electrode surface. However, their sensitivity is often insufficient for detecting low-abundance analytes. To enhance signal response, most strategies rely on nanomaterial-based electrode modifications. In this study, we present a modification strategy to construct a multifunctional monolayer that incorporates surface-bound ferrocene to promote electron transfer. The monolayer is assembled via copper-catalyzed azide-alkyne cycloaddition (CuAAC) using a mixture of polyethylene glycol (PEG)-based spacers: short N3-PEG3-Fc chains for redox activity, and longer N3-PEG11-biotin or N3-PEG24-biotin chains for immobilizing antibodies via streptavidin-biotin conjugation. Thermoplastic electrodes (TPEs) were modified with these mixed monolayers and characterized electrochemically using ferri- and ferrocyanide redox probes, as well as structurally by X-ray photoelectron spectroscopy (XPS). These analyses confirmed successful monolayer formation, integration of ferrocene and biotin functionalities, and minimization of nonspecific adsorption (NSA). As a proof-of-concept, the modified sensors were used to detect inactivated SARS-CoV-2 virus via its nucleocapsid (N) protein in buffer and nasopharyngeal samples using square wave voltammetry (SWV). Sensor performance appeared independent of PEG chain length in terms of electron transfer properties; however, PEG length influenced detection in a redox probe-dependent manner. Specifically, the use of ferrocyanide as the redox probe yielded the lowest and most consistent limits of detection for both PEG11 and PEG24 spacers (21.1 ± 10.6 ng/mL and 21.6 ± 10.8 ng/mL, respectively). These findings demonstrate that strategic design of surface chemistry and redox properties significantly improve the sensitivity of label-free electrochemical immunosensors.
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