College of Pharmacy, Institute of Life Science and School of Public Health, Chongqing Medical University, Chongqing 400016, PR China.
College of Pharmacy, Institute of Life Science and School of Public Health, Chongqing Medical University, Chongqing 400016, PR China.
Biosens Bioelectron. 2019 Apr 1;130:166-173. doi: 10.1016/j.bios.2019.01.054. Epub 2019 Feb 1.
In this study, a dual-type responsive electrochemical biosensor was developed for the quantitative detection of α2,6-sialylated glycans (α2,6-sial-Gs), a potential biomarker of tumors. The gold nanorods (AuNRs), which exhibited great specific surface area, as well as good biocompatibility, was synthesized by the way of seed growth method. Furthermore, a biotin-streptavidin (biotin-SA) system was introduced to improve the immunoreaction efficiency. Accordingly, a label-free biosensor was fabricated based on AuNRs-SA for the quick detection of α2,6-sial-Gs by recording the signal of differential pulse voltammetry (DPV). Furthermore, to expand the ultrasensitive detection of α2,6-sial-Gs, a carboxylated single-walled carbon nanohorns/sulfur-doped platinum nanocluster (c-SWCNHs/S-PtNC) was synthesized for the first time as a novel signal label, which showed an excellent catalytic performance. The usage of c-SWCNHs/S-PtNC could significantly amplify the electrochemical signal recorded by the amperometric i-t curve. Herein, a sandwich type biosensor was constructed by combining the AuNRs-SA on the electrode and c-SWCNHs/S-PtNC (signal amplifier). The label-free biosensor possessed a linear range from 5 ng mL to 5 μg mL with a detection limit of 0.50 ng mL, and the sandwich-type biosensor possessed a wide linear range from 1 fg mL to 100 ng mL with a detection limit of 0.69 fg mL. Furthermore, the biosensor exhibited excellent recovery and stability, indicating its potential for use in actual samples.
在这项研究中,开发了一种双响应型电化学生物传感器,用于定量检测α2,6-唾液酸化糖(α2,6-sial-Gs),这是一种肿瘤的潜在生物标志物。通过种子生长法合成了具有较大比表面积和良好生物相容性的金纳米棒(AuNRs)。此外,引入了生物素-链霉亲和素(biotin-SA)系统来提高免疫反应效率。因此,基于 AuNRs-SA 构建了一种无标记的生物传感器,通过记录差分脉冲伏安法(DPV)的信号来快速检测α2,6-sial-Gs。此外,为了扩大对α2,6-sial-Gs 的超灵敏检测,首次合成了羧基化单壁碳纳米角/硫掺杂铂纳米簇(c-SWCNHs/S-PtNC)作为新型信号标记物,表现出优异的催化性能。c-SWCNHs/S-PtNC 的使用可以显著放大通过安培电流时间(i-t)曲线记录的电化学信号。在此,通过将电极上的 AuNRs-SA 和 c-SWCNHs/S-PtNC(信号放大器)结合,构建了一种三明治型生物传感器。无标记的生物传感器具有 5ng/mL 至 5μg/mL 的线性范围,检测限为 0.50ng/mL,而三明治型生物传感器具有 1fg/mL 至 100ng/mL 的宽线性范围,检测限为 0.69fg/mL。此外,该生物传感器表现出优异的回收率和稳定性,表明其在实际样品中的应用潜力。