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实时监测电压响应型生物分子在电致换能表面上的结合。

Real-time monitoring of voltage-responsive biomolecular binding onto electro-switchable surfaces.

机构信息

Department of Chemistry and Biochemistry, Brigham Young University, C100 BNSN, Provo, UT, 84602, USA.

School of Chemical Engineering, University of Birmingham, Edgbaston, Birmingham, B15 2TT, UK.

出版信息

Anal Bioanal Chem. 2024 Nov;416(26):5743-5751. doi: 10.1007/s00216-024-05493-5. Epub 2024 Aug 22.

Abstract

Voltage-responsive biosensors capable of monitoring real-time adsorption behavior of biological analytes onto electroactive surfaces offer attractive strategies for disease detection, separations, and other adsorption-dependent analytical techniques. Adsorption of biological analytes onto electrically switchable surfaces can be modelled using neutravidin and biotin. Here, we report self-assembled monolayers formed from voltage-switchable biotinylated molecules on gold surfaces with tunable sensitivity to neutravidin in response to applied voltages. By using electrochemical quartz crystal microbalance (EQCM), we demonstrated real-time switchable behavior of these bio-surfaces and investigate the range of sensitivity by varying the potential of the same surfaces from -400 mV to open circuit potential (+155 mV) to +300 mV. We compared the tunability of the mixed surfaces to bare Au surfaces, voltage inert surfaces, and switchable biotinylated surfaces. Our results indicate that quartz crystal microbalance allows real-time changes in analyte binding behavior, which enabled observing the evolution of neutravidin sensitivity as the applied voltage was shifted. EQCM could in principle be used in kinetic studies or to optimize voltage-switchable surfaces in adsorption-based diagnostics.

摘要

能够监测生物分析物实时吸附到电活性表面上的电压响应生物传感器为疾病检测、分离和其他依赖于吸附的分析技术提供了有吸引力的策略。生物分析物在可电切换表面上的吸附可以使用亲和素和生物素进行模拟。在这里,我们报告了在金表面上形成的自组装单分子层,这些分子层由电压可切换的生物素化分子组成,对施加电压时的亲和素有可调的敏感性。通过使用电化学石英晶体微天平(EQCM),我们证明了这些生物表面的实时可切换行为,并通过将相同表面的电势从-400 mV 到开路电位(+155 mV)再到+300 mV 来研究灵敏度范围。我们将混合表面的可调性与裸 Au 表面、电压惰性表面和可切换生物素化表面进行了比较。我们的结果表明,石英晶体微天平允许实时改变分析物结合行为,从而能够观察到随着施加电压的变化,亲和素敏感性的演变。EQCM 原则上可用于动力学研究或优化基于吸附的诊断中的电压可切换表面。

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