Key Laboratory on Luminescence and Real-Time Analysis, Ministry of Education, College of Chemistry and Chemical Engineering, Southwest University, Chongqing, People's Republic of China.
Anal Chim Acta. 2012 Oct 1;745:137-42. doi: 10.1016/j.aca.2012.08.010. Epub 2012 Aug 14.
In this work, we reported a sandwiched luminol electrochemiluminescence (ECL) immunosensor using ZnO nanoparticles (ZnONPs) and glucose oxidase (GOD) decorated graphene as labels and in situ generated hydrogen peroxide as coreactant. In order to construct the base of the immunosensor, a hybrid architecture of Au nanoparticles and graphene by reduction of HAuCl(4) and graphene oxide (GO) with ascorbic acid was prepared. The resulted hybrid architecture modified electrode provided an excellent platform for immobilization of antibody with good bioactivity and stability. Then, ZnONPs and GOD functionalized graphene labeled secondary antibody was designed for fabricating a novel sandwiched ECL immunosensor. Enhanced sensitivity was obtained by in situ generating hydrogen peroxide with glucose oxidase and the catalysis of ZnONPs to the ECL reaction of luminol-H(2)O(2) system. The as-prepared ECL immunosensor exhibited excellent analytical property for the detection of carcinoembryonic antigen (CEA) in the range from 10 pg mL(-1) to 80 ng mL(-1) and with a detection limit of 3.3 pg mL(-1) (SN(-1)=3). The amplification strategy performed good promise for clinical application of screening of cancer biomarkers.
在这项工作中,我们报道了一种夹心型鲁米诺电化学发光(ECL)免疫传感器,该传感器使用氧化锌纳米粒子(ZnONPs)和葡萄糖氧化酶(GOD)修饰的石墨烯作为标记物,并原位生成过氧化氢作为共反应物。为了构建免疫传感器的基底,通过抗坏血酸还原 HAuCl(4)和氧化石墨烯(GO)制备了金纳米粒子和石墨烯的混合结构。所得的混合结构修饰电极提供了一个极好的平台,用于固定具有良好生物活性和稳定性的抗体。然后,设计了ZnONPs 和 GOD 功能化石墨烯标记的二抗,用于制备新型夹心型 ECL 免疫传感器。通过葡萄糖氧化酶原位生成过氧化氢,并通过 ZnONPs 对鲁米诺-H(2)O(2)体系的 ECL 反应的催化,获得了增强的灵敏度。所制备的 ECL 免疫传感器在 10 pg mL(-1)至 80 ng mL(-1)的范围内对癌胚抗原(CEA)的检测表现出优异的分析性能,检测限为 3.3 pg mL(-1)(SN(-1)=3)。该放大策略有望用于癌症生物标志物的临床筛选。