School of Chemistry, Dalian University of Technology, Dalian 116023, PR China.
School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210093, PR China.
Biosens Bioelectron. 2016 Jun 15;80:614-620. doi: 10.1016/j.bios.2016.02.030. Epub 2016 Feb 11.
A highly sensitive signal-on photoelectrochemical (PEC) immunosensor was fabricated here using CdS:Mn/TiO2 as photoelectrochemical sensing platform, and silver nanoclusters and graphene naocomposites (AgNCs-GR) as signal amplification tags. The immunosensor was constructed based on the specific sandwich immunoreaction, and the photo-to-current conversion efficiency of the isolated protein modified CdS:Mn/TiO2 matrix was improved based on the synergistic effect of AgNCs-GR. Under irradiation, the photogenerated electrons from the AgNCs at a higher conduction band edge level could be transport to the CdS:Mn/TiO2 matrix with the assistance of highly conductive graphene nanosheets, as well as recycle the trapped excitons in the defects-rich CdS:Mn/TiO2 interface. The electron transport and exciton recycle reduced the possibility of electron-hole recombination and greatly improved the photo-to-current conversion efficiency of the sensing matrix. Based on the signal enhancement, a signal-on PEC immunosensors was fabricated for the detection of carcinoembryonic antigen (CEA), a model analyte related to many malignant diseases. Under optimal conditions, the as-prepared immunosensor showed excellent analytical performance, with a wide linear range from 1.0 pg/mL to 100 ng/mL and a low limit of detection of 1.0 pg/mL. The signal-on mode provided 2.48 times higher sensitivity compared with signal-off mode. This strategy demonstrated good accuracy and high selectivity for practical sample analysis, thus may have great application prospective in the prediction and early diagnosis of diseases.
一种高灵敏度的光电化学(PEC)免疫传感器,这里使用 CdS:Mn/TiO2 作为光电化学传感平台,银纳米簇和石墨烯纳米复合材料(AgNCs-GR)作为信号放大标记物来制备。该免疫传感器基于特异性三明治免疫反应构建,基于 AgNCs-GR 的协同作用,提高了分离蛋白修饰的 CdS:Mn/TiO2 基质的光电流转换效率。在光照下,AgNCs 较高导带边缘能级的光生电子在高度导电的石墨烯纳米片的协助下可以传输到 CdS:Mn/TiO2 基质中,并且可以在富含缺陷的 CdS:Mn/TiO2 界面处回收被捕获的激子。电子传输和激子回收减少了电子-空穴复合的可能性,极大地提高了传感基质的光电流转换效率。基于信号增强,构建了用于检测癌胚抗原(CEA)的信号开启型 PEC 免疫传感器,CEA 是与许多恶性疾病相关的模型分析物。在最佳条件下,所制备的免疫传感器表现出优异的分析性能,线性范围从 1.0 pg/mL 到 100 ng/mL,检测限低至 1.0 pg/mL。与信号关闭模式相比,信号开启模式提供了 2.48 倍的更高灵敏度。该策略用于实际样品分析时具有良好的准确性和高选择性,因此在疾病的预测和早期诊断方面可能具有广阔的应用前景。