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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >New immunoprobe: Dual-labeling ZIF-8 embellished with multifunctional bovine serum albumin lamella for electrochemical immunoassay of tumor marker
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New immunoprobe: Dual-labeling ZIF-8 embellished with multifunctional bovine serum albumin lamella for electrochemical immunoassay of tumor marker

机译:新型免疫盗:双标签ZIF-8用多功能牛血清白蛋白薄片,用于肿瘤标志物的电化学免疫测定

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摘要

A new immunoprobe, which can initiate the sedimentation of Ag nanoparticles (NPs) on an electrode surface, was developed for the electrochemical detection of carbohydrate antigen 72-4 (CA 72-4). To design the immunoprobe, zeolitic imidazolate frameworks (ZIFs) were employed as the carrier to enrich thionine molecules, then bovine serum albumin (BSA) was modified on the electrode surface. Advantageously, BSA, served as an anchor to further attach the labeling antibodies (Ab(2)) and alkaline phosphatase (ALP) to also be modified on the surface through covalent bonding. To construct the immunosensor, multiwalled carbon nanotube-graphene oxide composites were employed to provide active sites, and the electrodeposited Au NPs were used to immobilize coating antibodies. In the presence of CA 72-4, a sandwich immunosensor was established, and a cascade reaction was initiated to deposit Ag NPs under the catalysis, which can further improve the conductivity of electrode interface. Under the optimal conditions, the immunosensor displayed excellent performance with a wide linear range from 1 mu U mL(-1) to 10 U mL(-1) and an ultralow detection limit of 0.438 mu U mL(-1) (S/N = 3).
机译:为了电化学检测糖类抗原72-4(CA72-4),开发了一种新的免疫探针,该探针可以引发银纳米颗粒(NPs)在电极表面的沉积。为了设计免疫探针,以沸石咪唑框架(ZIF)为载体富集硫堇分子,然后在电极表面修饰牛血清白蛋白(BSA)。有利的是,BSA作为锚进一步将标记抗体(Ab(2))和碱性磷酸酶(ALP)通过共价键连接在表面上。为了构建免疫传感器,采用多壁碳纳米管-氧化石墨烯复合材料提供活性位点,并使用电沉积的金纳米颗粒固定涂层抗体。在CA 72-4存在下,建立了三明治式免疫传感器,并在催化作用下引发级联反应沉积Ag NP,从而进一步提高电极界面的导电性。在最佳条件下,免疫传感器表现出良好的性能,线性范围从1μU-mL(-1)到10μU-mL(-1),超低检测限为0.438μU-mL(-1)(S/N=3)。

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