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新型荧光有机纳米颗粒作为血清中多巴胺的无标记生物传感器。

Novel fluorescent organic nanoparticles as a label-free biosensor for dopamine in serum.

作者信息

Ding Lu, Qin Zhenwen, Xiang Chunlan, Zhou Gang

机构信息

Lab of Advanced Materials, Collaborative Innovation Center of Chemistry for Energy Materials, Fudan University, Shanghai 200438, P. R. China.

出版信息

J Mater Chem B. 2017 Apr 21;5(15):2750-2756. doi: 10.1039/c6tb03077g. Epub 2017 Mar 28.

Abstract

Novel fluorescent organic nanoparticles (FONs) composed of an arbitrarily selected organic dye (C2) and an amphiphilic triblock copolymer (Pluronic F127) have been designed and constructed. The as-prepared C2-F127 FONs display uniform morphology with a diameter of around 300 nm and strong orange fluorescence with an emission maximum at 561 nm. When C2-F127 FONs are utilized as a fluorescent probe for detecting dopamine, a significant fluorescence quenching can be observed. Such fluorescence quenching is attributed to the formation of polydopamine coated on the surfaces of the FONs, which leads to photo-induced charge transfer between the organic dye molecules and the formed polydopamine. Moreover, C2-F127 FONs are highly selective to dopamine over other biomaterials, such as glucose, uric acid, ascorbic acid, epinephrine and l-DOPA, including in a competitive environment. As C2-F127 FONs demonstrate good dispersion and high stability in biological media, they are further utilized as a label-free biosensor for detecting dopamine in 10% serum, and satisfactory sensitivity and selectivity are achieved.

摘要

由任意选择的有机染料(C2)和两亲性三嵌段共聚物(普朗尼克F127)组成的新型荧光有机纳米颗粒(FONs)已被设计和构建。所制备的C2-F127 FONs呈现出均匀的形态,直径约为300 nm,并具有强烈的橙色荧光,发射最大值在561 nm。当将C2-F127 FONs用作检测多巴胺的荧光探针时,可以观察到显著的荧光猝灭。这种荧光猝灭归因于在FONs表面形成的聚多巴胺,这导致了有机染料分子与形成的聚多巴胺之间的光诱导电荷转移。此外,在包括竞争环境在内的情况下,C2-F127 FONs对多巴胺的选择性高于其他生物材料,如葡萄糖、尿酸、抗坏血酸、肾上腺素和左旋多巴。由于C2-F127 FONs在生物介质中表现出良好的分散性和高稳定性,它们进一步被用作无标记生物传感器来检测10%血清中的多巴胺,并实现了令人满意的灵敏度和选择性。

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