电解质
晶体管
抗体
抗原
化学
免疫学
生物
电极
电气工程
工程类
电压
物理化学
作者
Pamela Allison Manco Urbina,Alessandro Paradisi,Roger Hasler,Matteo Sensi,Marcello Berto,Gulseren Deniz Saygin,Jakub Dostálek,Marcello Pinti,Pierpaolo Greco,Marco Borsari,Wolfgang Knoll,Carlo Augusto Bortolotti,Fabio Biscarini
标识
DOI:10.1016/j.xcrp.2024.101919
摘要
Affinity-based biosensors employing surface-bound biomolecules for analyte detection are important tools in clinical diagnostics and drug development. In this context, electrolyte-gated organic transistors (EGOTs) are emerging as ultrasensitive label-free biosensors. In this study, we present an EGOT sensor integrated within a microfluidic system. The sensor utilizes the cytomegalovirus (CMV) phosphoprotein 65 as a biorecognition element to detect the pathological biomarker human anti-cytomegalovirus antibody in solution. The biorecognition element is grafted onto the gate electrode by exploiting the polyhistidine-tag technology. Real-time monitoring of the EGOT response, coupled with a twocompartment kinetic model analysis, enables the determination of analyte concentration, binding kinetics, and thermodynamics of the interaction. The analysis of the relevant kinetic parameters of the binding process yields a reliable value for the thermodynamic equilibrium constant and suggests that the measured deviations from the Langmuir binding model arise from the co-existence of binding sites with different affinities toward the antibodies.
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