Shandong Key Laboratory of Biochemical Analysis, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.
State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210093, China.
Anal Chim Acta. 2022 Mar 22;1199:339560. doi: 10.1016/j.aca.2022.339560. Epub 2022 Feb 7.
Target biomarker detection with high accuracy in biological sample is necessary for the constructed immunoassays. Herein, a novel and enhanced cathodic immunosensor supported by photoanode was designed for sensitive and specific detection of human chorionic gonadotropin (HCG). Specifically, the electrode of TiO nanotube with N doping (TiO:N) was fabricated and assembled with AgInS quantum dots (QDs) to acquire the TiO:N/AgInS photoanode. For the sensing cathode, Pt nanoparticles (NPs) were decorated on carbon nanotubes (CNTs) to prepare the CNT/Pt cathodic matrix and was used to modify capture HCG antibody (Ab). In this photoelectrochemical (PEC) sensing system, the TiO:N/AgInS photoanode served as the signal-converting element to produce prominent current signal, while the immune recognition events occurred on the sensing cathode to evidently change the initial current signal from steric hindrance effect. Profiting by excellent photoelectric property and good anti-interference ability of this featured PEC system, the developed cathodic immunosensor demonstrated high sensitivity and specificity for the detection of target HCG antigen (Ag). This photoanode-supported cathodic sensing strategy provided a potential path forward to exploit other enhanced PEC immunosensors in the application of biological samples.
在生物样本中,以高精度检测目标生物标志物对于构建免疫分析至关重要。本文设计了一种新型的增强型阴极免疫传感器,该传感器基于光电阳极,用于灵敏和特异性检测人绒毛膜促性腺激素(hCG)。具体而言,制备了掺氮 TiO 纳米管(TiO:N)电极,并将其与 AgInS 量子点(QDs)组装,以获得 TiO:N/AgInS 光电阳极。对于传感阴极,将 Pt 纳米颗粒(NPs)修饰在碳纳米管(CNTs)上,以制备 CNT/Pt 阴极基质,并用于修饰捕获 hCG 抗体(Ab)。在这个光电化学(PEC)传感系统中,TiO:N/AgInS 光电阳极作为信号转换元件,产生显著的电流信号,而免疫识别事件发生在传感阴极上,通过空间位阻效应明显改变初始电流信号。得益于该 PEC 系统优异的光电性能和良好的抗干扰能力,所开发的阴极免疫传感器在检测目标 hCG 抗原(Ag)时表现出高灵敏度和特异性。这种基于光电阳极的阴极传感策略为开发其他用于生物样本分析的增强型 PEC 免疫传感器提供了潜在途径。