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基于杂交链式反应的鲁米诺电化学发光增强及其原位生成共反应物用于高灵敏免疫分析。

Amplified electrochemiluminescence of luminol based on hybridization chain reaction and in situ generate co-reactant for highly sensitive immunoassay.

机构信息

Education Ministry Key Laboratory on Luminescence and Real-Time Analysis, College of Chemistry and Chemical Engineering, Chongqing 400715, People's Republic of China.

出版信息

Talanta. 2013 Oct 15;115:577-82. doi: 10.1016/j.talanta.2013.06.027. Epub 2013 Jun 21.

Abstract

In this work, we described a simple and highly sensitive electrochemiluminescence (ECL) strategy for IgG detection. Firstly, L-cysteine functionalized reduced graphene oxide composite (L-cys-rGO) was decorated on the glassy carbon electrode (GCE) surface. Then anti-IgG was immobilized on the modified electrode surface through the interaction between the carboxylic groups of the L-cys-rGO and the amine groups in anti-IgG. And then biotinylated anti-IgG (bio-anti-IgG) was assembled onto the electrode surface based on the sandwich-type immunoreactions. By the conjunction of biotin and streptavidin (SA), SA was immobilized, which in turn, combined with the biotin labeled initiator strand (S1). In the presence of two single DNA strands of glucose oxidase labeled S2 (GOD-S2) and complementary strand (S3), S1 could trigger the hybridization chain reaction (HCR) among S1, GOD-S2 and S3. Herein, due to HCR, numerous GOD was efficiently immobilizated on the sensing surface and exhibited excellent catalysis towards glucose to in situ generate amounts of hydrogen peroxide (H2O2), which acted as luminol's co-reactant to significantly enhance the ECL signal. The proposed ECL immunosensor presented predominate stability and high sensibility for determination of IgG in the range from 0.1 pg mL(-1) to 100 ng mL(-1) with a detection limit of 33 fg mL(-1) (S/N=3). Additionally, the designed ECL immunosensor exhibited a promising application for other protein detection.

摘要

在这项工作中,我们描述了一种简单且高灵敏度的电化学发光(ECL)策略,用于 IgG 的检测。首先,将 L-半胱氨酸功能化的还原氧化石墨烯复合材料(L-cys-rGO)修饰在玻碳电极(GCE)表面。然后,通过 L-cys-rGO 的羧基与抗 IgG 中的氨基之间的相互作用,将抗 IgG 固定在修饰电极表面上。接着,基于三明治型免疫反应,将生物素化的抗 IgG(bio-anti-IgG)组装到电极表面上。通过生物素和链霉亲和素(SA)的结合,将 SA 固定在电极表面上,进而与生物素标记的引发子链(S1)结合。在存在两种葡萄糖氧化酶标记的单链 DNA(GOD-S2 和互补链 S3)的情况下,S1 可以触发 S1、GOD-S2 和 S3 之间的杂交链式反应(HCR)。在此,由于 HCR,大量的 GOD 被有效地固定在传感表面上,并对葡萄糖表现出优异的催化作用,原位生成大量的过氧化氢(H2O2),H2O2 作为鲁米诺的共反应物,显著增强了 ECL 信号。所提出的 ECL 免疫传感器在 0.1 pg mL(-1)至 100 ng mL(-1) 的范围内对 IgG 的测定表现出优越的稳定性和高灵敏度,检测限为 33 fg mL(-1)(S/N=3)。此外,该设计的 ECL 免疫传感器在其他蛋白质检测方面表现出了有前途的应用。

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