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基于还原氧化石墨烯修饰纳米结构二氧化钛的上皮性肿瘤标志物 EpCAM 的电化学生物传感器。

Electrochemical biosensor for the epithelial cancer biomarker EpCAM based on reduced graphene oxide modified with nanostructured titanium dioxide.

机构信息

Department of Applied Chemistry, Delhi Technological University, Delhi, 110042, India.

出版信息

Mikrochim Acta. 2020 Apr 18;187(5):275. doi: 10.1007/s00604-020-04233-7.

Abstract

An electrochemical immunosensor has been fabricated for the early determination of epithelial cell adhesion molecules (EpCAM, tumor biomarker) antigen using reduced graphene oxide (rGO) modified with nanostructured titanium dioxide (TiO). The hydrothermally synthesized rGO@TiO nanocomposite has been electrophoretically deposited on indium tin oxide (ITO) coated glass substrate, and the deposition was confirmed using various spectroscopic, microscopic, and electrochemical techniques. The fabricated rGO@TiO/ITO electrode shows improved electron transfer kinetics with an electron transfer rate constant of 1.93 × 10 cm·s. Furthermore, the rGO@TiO/ITO electrodes were used for the covalent immobilization of monoclonal EpCAM antibodies. Electrochemical determination of the EpCAM cancer biomarker is achieved using differential pulse voltammetry by scanning the potential from - 0.4 to 0.8 V with an amplitude of 50 mV. The rGO@TiO-based biosensor shows high sensitivity (3.24 μA·mL·ng·cm), wide detection range (0.01 ng·mL to 60 ng·mL), and low detection limit (0.0065 ng·mL, S/N = 3). The fabricated biosensor is highly stable and regenerable and has been successfully applied to the determination of EpCAM in spiked human serum samples. Graphical abstract.

摘要

一种电化学免疫传感器已被制备,用于使用经过纳米结构化二氧化钛 (TiO) 修饰的还原氧化石墨烯 (rGO) 对上皮细胞黏附分子 (EpCAM,肿瘤标志物) 抗原进行早期测定。水热合成的 rGO@TiO 纳米复合材料已通过电泳沉积在氧化铟锡 (ITO) 涂覆的玻璃基底上,并使用各种光谱、显微镜和电化学技术确认了沉积。所制备的 rGO@TiO/ITO 电极显示出改进的电子转移动力学,电子转移速率常数为 1.93 × 10-2 cm·s-1。此外,rGO@TiO/ITO 电极用于单克隆 EpCAM 抗体的共价固定化。通过差分脉冲伏安法在 -0.4 至 0.8 V 的电势范围内以 50 mV 的幅度进行扫描,实现了对 EpCAM 癌症生物标志物的电化学测定。基于 rGO@TiO 的生物传感器表现出高灵敏度 (3.24 μA·mL·ng·cm-1)、宽检测范围 (0.01 ng·mL 至 60 ng·mL) 和低检测限 (0.0065 ng·mL,S/N = 3)。所制备的生物传感器具有高稳定性和可再生性,并已成功应用于测定加标人血清样品中的 EpCAM。

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