Shanghai Key Laboratory of Materials Protection and Adv. Mater. in Electric Power, Shanghai University of Electric Power, Shanghai, 200090, China.
Shanghai Key Laboratory of Materials Protection and Adv. Mater. in Electric Power, Shanghai University of Electric Power, Shanghai, 200090, China.
Biosens Bioelectron. 2024 Sep 15;260:116434. doi: 10.1016/j.bios.2024.116434. Epub 2024 May 26.
Aptamer-based electrochemical sensors are frequently used as independent, surface-functionalized, passive electrodes. However, their sensitivity and detection limits become limited, particularly when the electrode area is reduced to facilitate miniaturization. A mobile phone-based microfluidic electrochemical aptamer sensing platform for 3,3',4,4'-tetrachlorobiphenyl (PCB77) detection was developed in this work. This aptamer sensor utilized Exonuclease I (Exo I) and DNA/AuNPs/horseradish peroxidase (DNA/AuNPs/HRP) nanoprobes as a merged signal amplification method, which resulted in an increase in the electrochemical sensing performance. Sensitive detection of PCB77 was accomplished by functionalizing the hierarchically structured Au@MoS/CNTs/GO modified working/sensing electrode with the specific aptamer. The aptamer sensor was tested with different concentrations of PCB77 within the microfluidic platform. Afterward, the differential pulse voltammograms were recorded using a wireless integrated circuit device. Subsequently, the collected data was transmitted to a smartphone using Bluetooth communication. A detection limit of 0.0085 ng/L was obtained for PCB77 detection, with a detection range from 0.1 to 1000 ng/L. In addition, the detection of PCB77 in spiked water samples validated the possibility of using this aptamer sensor in a real environment, and the aptamer sensor demonstrated high selectivity in distinguishing PCB77 from other potential interfering species. The merging of electrochemical aptamer sensors with purposefully engineered microfluidic and integrated devices in this study is a novel and promising method that provides a dependable platform for on-site applications.
基于适配体的电化学传感器常被用作独立的、表面功能化的、被动电极。然而,当电极面积减小以促进小型化时,其灵敏度和检测限会受到限制。本工作开发了一种基于智能手机的微流控电化学适配体传感平台,用于检测 3,3',4,4'-四氯联苯(PCB77)。该适配体传感器利用 Exonuclease I(Exo I)和 DNA/AuNPs/辣根过氧化物酶(DNA/AuNPs/HRP)纳米探针作为一种合并的信号放大方法,从而提高了电化学传感性能。通过用特异性适配体功能化分层结构的 Au@MoS/CNTs/GO 修饰工作/传感电极,实现了对 PCB77 的灵敏检测。在微流控平台中,用不同浓度的 PCB77 对适配体传感器进行了测试。随后,使用无线集成电路装置记录差分脉冲伏安图。然后,使用蓝牙通信将收集到的数据传输到智能手机上。该适配体传感器对 PCB77 的检测限为 0.0085ng/L,检测范围为 0.1 至 1000ng/L。此外,在加标水样中检测 PCB77 验证了该适配体传感器在实际环境中应用的可能性,并且该适配体传感器在区分 PCB77 与其他潜在干扰物质方面表现出高选择性。本研究中电化学适配体传感器与精心设计的微流控和集成器件的结合是一种新颖而有前途的方法,为现场应用提供了可靠的平台。