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使用电化学阻抗谱实时监测抗体在沉积于金电极上的自组装单分子层上的化学吸附。

Real-Time Monitoring of Chemisorption of Antibodies onto Self-Assembled Monolayers Deposited on Gold Electrodes Using Electrochemical Impedance Spectroscopy.

作者信息

Oliveira Soraia, Jones Brian V, Estrela Pedro, Rocha Paulo R F, Reis Nuno Miguel

机构信息

Department of Chemical Engineering, University of Bath, Claverton Down, Bath BA2 7AY, United Kingdom.

Centre for Bioengineering & Biomedical Technologies (CBio), University of Bath, Claverton Down, Bath BA2 7AY, United Kingdom.

出版信息

Langmuir. 2025 Jul 1;41(25):15974-15986. doi: 10.1021/acs.langmuir.5c01062. Epub 2025 Jun 17.

Abstract

Understanding protein binding to biosensing surfaces is paramount to the design and performance of biosensing devices in fields such as point-of-care testing and bioanalytics. Here, we systematically demonstrated the use of electrical impedance spectroscopy (EIS) and equivalent circuit modeling for real-time tracking of chemisorption of IgG antibody to large-area circular gold electrodes (1.3 mm) functionalized with a self-assembled monolayer (SAM). Using 1 μg/mL IgG and 5 mM of [Fe(CN)], the measured low-frequency impedance proved sensitive to both equilibrium and kinetics of antibody binding, with a slope of ∼74 kΩ/h for the first 2 h and taking approximately 4 h to reach equilibrium in a standard 6 mm-diameter well. Changes in impedance were found to be proportional to the reciprocal of the change in capacitance up to half-to-full IgG monolayer bound to the SAM. Further experiments with a flat microchannel confirmed that the low-frequency impedance and equivalent charge-transfer resistance () depend not only on antibody diffusion but also on the surface-to-volume ratio, which can represent a major challenge previously unreported for the miniaturization of EIS in microfluidic devices. This challenge arises as it requires a higher concentration of [Fe(CN)], of 50 mM or above, which was found to interfere with during chemisorption at low IgG concentrations. Chemisorption of IgG to SAM was confirmed with fluorescence microscopy and FTIR. This study marks, to the best of our knowledge, the first experimental demonstration of EIS as a real-time technique for quantitation of Langmuir isotherms during chemisorption of antibodies to SAM, with the potential to improve the design of EIS-based biosensors, especially those integrated into microfluidic devices.

摘要

了解蛋白质与生物传感表面的结合对于即时检测和生物分析等领域中生物传感设备的设计和性能至关重要。在此,我们系统地展示了如何使用电阻抗谱(EIS)和等效电路建模来实时跟踪IgG抗体在由自组装单分子层(SAM)功能化的大面积圆形金电极(1.3毫米)上的化学吸附。使用1μg/mL的IgG和5mM的[Fe(CN)],测得的低频阻抗对抗体结合的平衡和动力学均敏感,在前2小时内斜率约为74kΩ/h,在标准6毫米直径的孔中大约需要4小时达到平衡。发现阻抗变化与电容变化的倒数成正比,直至与SAM结合的IgG单分子层达到半满至满。使用扁平微通道的进一步实验证实,低频阻抗和等效电荷转移电阻()不仅取决于抗体扩散,还取决于表面与体积比,这可能是微流控设备中EIS小型化以前未报道的一个主要挑战。出现这一挑战是因为它需要50mM或更高浓度的[Fe(CN)],而在低IgG浓度下化学吸附过程中,该浓度会干扰。通过荧光显微镜和傅里叶变换红外光谱(FTIR)证实了IgG与SAM的化学吸附。据我们所知,本研究首次通过实验证明EIS作为一种实时技术,可用于定量抗体与SAM化学吸附过程中的朗缪尔等温线,有潜力改进基于EIS的生物传感器的设计,尤其是那些集成到微流控设备中的传感器。

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