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Rapid and Label-Free Detection of Interferon Gamma via an Electrochemical Aptasensor Comprising a Ternary Surface Monolayer on a Gold Interdigitated Electrode Array

机译:通过电化学适应传感器快速和无标签检测干扰素伽玛,该传感器包含金叉指电极阵列上的三重表面单层。

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摘要

A label-free electrochemical impedance spectroscopy (EIS) aptasensor for rapid detection (\u3c35 min) of interferon-gamma (IFN-γ) was fabricated by immobilizing a RNA aptamer capture probe (ACP), selective to IFN-γ, on a gold interdigitated electrode array (Au IDE). The ACP was modified with a thiol group at the 5′ terminal end and subsequently co-immobilized with 1,6-hexanedithiol (HDT) and 6-mercapto-1-hexanolphosphate (MCH) to the gold surface through thiol–gold interactions. This ACP/HDT-MCH ternary surface monolayer facilitates efficient hybridization with IFN-γ and displays high resistance to nonspecific adsorption of nontarget proteins [i.e., fetal bovine serum (FBS) and bovine serum albumin (BSA)]. The Au IDE functionalized with ACP/HDT-MCH was able to measure IFN-γ in actual FBS solution with a linear sensing range from 22.22 pM to 0.11 nM (1–5 ng/mL) and a detection limit of 11.56 pM. The ability to rapidly sense IFN-γ within this sensing range makes the developed electrochemical platform conducive toward in-field disease detection of a variety of diseases including paratuberculosis (i.e., Johne’s Disease). Furthermore, experimental results were numerically validated with an equivalent circuit model that elucidated the effects of the sensing process and the influence of the immobilized ternary monolayer on signal output. This is the first time that ternary surface monolayers have been used to selectively capture/detect IFN-γ on Au IDEs.
机译:通过将对IFN-γ选择性的RNA适体捕获探针(ACP)固定在金上,制造了用于快速检测(-u35c35分钟)干扰素-γ(IFN-γ)的无标记电化学阻抗光谱(EIS)适体传感器。叉指电极阵列(Au IDE)。 ACP在5'末端用巯基修饰,然后通过巯基-金相互作用将1,6-己二硫醇(HDT)和6-巯基-1-己醇磷酸酯(MCH)共固定在金表面。该ACP / HDT-MCH三元表面单层促进了与IFN-γ的有效杂交,并显示出对非靶蛋白(即胎牛血清(FBS)和牛血清白蛋白(BSA))的非特异性吸附的高抗性。用ACP / HDT-MCH功能化的Au IDE能够在实际FBS溶液中测量IFN-γ,其线性感应范围为22.22 pM至0.11 nM(1-5 ng / mL),检测限为11.56 pM。在此感应范围内快速感应IFN-γ的能力使得开发的电化学平台有利于对包括副结核病(即Johne's Disease)在内的多种疾病进行现场疾病检测。此外,用等效电路模型对实验结果进行了数值验证,该模型阐明了传感过程的影响以及固定的三层单分子层对信号输出的影响。这是三元表面单层首次用于选择性捕获/检测Au IDE上的IFN-γ。

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