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基于高性能卟啉类石墨烯量子点的伤寒沙门氏菌免疫传感检测

High-performance porphyrin-like graphene quantum dots for immuno-sensing of Salmonella typhi.

机构信息

Institute of Biochemistry and Biophysics, University of Tehran, Tehran, Iran.

Department of Physics, Shahid Beheshti University, Tehran, 1983969411, Iran.

出版信息

Biosens Bioelectron. 2021 Sep 15;188:113334. doi: 10.1016/j.bios.2021.113334. Epub 2021 May 14.

Abstract

The extraordinary optical properties of porphyrins have inspired their applications in various fields. Herein, we introduce iron porphyrin bio-mimicked graphene quantum dots (Fe-N-GQDs) as a novel paramagnetic and fluorescent label. The Fe-N-GQD was prepared by the mechanochemical mixing of Fe, N, and C sources followed by pyrolysis at high-temperature and next, the solvothermal treatment was performed. The Fe-N sites in graphene matrix, the structural alterations during the solvothermal treatment, the optical properties, and paramagnetic behaviour were studied using FTIR, Raman and X-ray spectroscopies, and Vibrating sample magnetometer. The structural studies revealed that under solvothermal condition, Fe-N doped graphene sheets cut into ultra-small Fe-N-GQDs containing well-dispersed particles with an average diameter of about 2.5 nm. As a result of Fe-N doping, the photoluminescence quantum yield was enhanced to 86% and strong paramagnetic behaviour was observed. Due to the rich oxygen-containing groups at Fe-N-GQDs surface, it has proper sites for bio-conjugation. The bioconjugated Fe-N-GQDs serve as donors in a prominent fluorescence resonance energy transfer system, while graphene oxide acts as an acceptor. The proposed immunosensor was successfully applied for the detection of Salmonella Typhi Vi antigen in real human serum in the concentration range from 1 pg/mL to 1 μg/mL with the detection limit of 1 pg/mL.

摘要

卟啉的非凡光学性质激发了它们在各个领域的应用。在此,我们介绍了铁卟啉类生物模拟石墨烯量子点(Fe-N-GQDs)作为一种新型顺磁和荧光标记物。Fe-N-GQD 是通过铁、氮和碳源的机械化学混合,然后在高温下进行热解,再进行溶剂热处理制备得到的。利用傅里叶变换红外光谱、拉曼光谱和 X 射线光谱以及振动样品磁强计研究了石墨烯基质中的 Fe-N 位、溶剂热处理过程中的结构变化、光学性质和顺磁行为。结构研究表明,在溶剂热条件下,Fe-N 掺杂的石墨烯片被切割成含有平均直径约为 2.5nm 的超小 Fe-N-GQDs 的颗粒,这些颗粒分散良好。由于 Fe-N 掺杂,光致发光量子产率提高到 86%,并观察到强顺磁行为。由于 Fe-N-GQDs 表面含有丰富的含氧基团,因此具有合适的生物偶联位点。该生物偶联的 Fe-N-GQDs 作为供体在一个显著的荧光共振能量转移体系中,而氧化石墨烯则作为受体。该提出的免疫传感器成功地应用于检测真实人血清中伤寒 Vi 抗原,其浓度范围为 1pg/mL 至 1μg/mL,检测限为 1pg/mL。

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