Biosensor Research Center, Endocrinology and Metabolism Molecular-Cellular Sciences Institute, Tehran University of Medical Sciences, Tehran, Iran.
Endocrinology and Metabolism Research Center, Endocrinology and Metabolism Research Institute, Tehran University of Medical Sciences, Tehran, Iran.
Mikrochim Acta. 2021 Aug 16;188(9):296. doi: 10.1007/s00604-021-04959-y.
Glycated hemoglobin (HbA1c) is one of the most popular biomarkers which can be utilized for the diagnosis and control of diabetes in clinical practice. In this study, a sandwich paper-based electrochemiluminescence (ECL) biosensor has been developed using the zirconium metal-organic framework/FeO(trimethyl chitosan)/gold nanocluster (Zr-MOF/FeO(TMC)/AuNCs) nanocomposite as tracing tag to label anti-HbA1c monoclonal antibody and reduced graphene oxide (rGO) as immobilization platform of sensing element. The screen-printed electrodes (SPEs) were constructed and modified by sputtering a thick layer of gold on the paper substrate, followed by electrochemical reduction of aminophenylboronic acid (APBA)-functionalized GO to rGO/APBA, respectively. Different types of surface analysis methods were applied to characterize the Zr-MOF/FeO(TMC)/AuNCs nanomaterials fabricated. Finally, antibody-labeled Zr-MOF/FeO(TMC)/AuNCs nanocomposites were subjected to HbA1c in the sample and on the paper-based SPE. Quantitative measurement of HbA1c was performed using ECL and cyclic voltammetry (CV) over a potential range of - 0.2 to 1.7 V vs gold reference electrode with a sweep rate of 0.2 V.s in the presence of triethylamine as a co-reactant after sandwiching the HbA1c target between antibody and APBA on the sensing area. This immunosensor demonstrated the desirable assay performance for HbA1c with a wide response range from 2 to 18% and a low detection limit (0.072%). This new strategy provides an effective method for high-performance bioanalysis and opens avenues for the development of high-sensitive and user-friendly device. Graphical abstract.
糖化血红蛋白(HbA1c)是一种最受欢迎的生物标志物,可用于临床实践中的糖尿病诊断和控制。在这项研究中,我们使用锆基金属有机骨架/FeO(三甲基壳聚糖)/金纳米簇(Zr-MOF/FeO(TMC)/AuNCs)纳米复合材料作为示踪标记物,标记抗 HbA1c 单克隆抗体,并将还原氧化石墨烯(rGO)作为传感元件的固定化平台,开发了一种基于纸的夹心电化学发光(ECL)生物传感器。通过在纸基底上溅射一层厚厚的金,随后电化学还原氨苯基硼酸(APBA)功能化的 GO 分别得到 rGO/APBA,构建并修饰了丝网印刷电极(SPE)。应用不同类型的表面分析方法来表征制备的 Zr-MOF/FeO(TMC)/AuNCs 纳米材料。最后,将抗体标记的 Zr-MOF/FeO(TMC)/AuNCs 纳米复合材料应用于样品和基于纸的 SPE 上的 HbA1c。在存在三乙胺作为共反应物的情况下,在金参比电极的电位范围为-0.2 至 1.7 V 内,以 0.2 V.s 的扫速进行循环伏安法(CV)和 ECL 测量,以定量测量 HbA1c。该免疫传感器对 HbA1c 具有理想的检测性能,检测范围从 2%到 18%,检测限低(0.072%)。这种新策略为高性能生物分析提供了一种有效的方法,并为开发高灵敏度和用户友好的设备开辟了道路。