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一种持久发光的纳米信标,可通过避免背景干扰来实际检测铅离子。

A persistent luminescent nanobeacon for practical detection of lead ions via avoiding background interference.

机构信息

College of Environment and Resources, Xiangtan University, Xiangtan, 411105, Hunan, China; Hunan Provincial Key Laboratory of Cytochemistry, School of Chemistry and Chemical Engineering, Changsha University of Science and Technology, Changsha, 410114, Hunan, China.

College of Environment and Resources, Xiangtan University, Xiangtan, 411105, Hunan, China.

出版信息

Anal Chim Acta. 2022 Mar 15;1198:339555. doi: 10.1016/j.aca.2022.339555. Epub 2022 Jan 26.

Abstract

Heavy metal ions are considered to be the most serious sources for water pollution. Accurate detection of metal ions is important for pollution control and ecological protection. Background interference is an inevitable obstacle in the fluorescent analysis of complex samples. Herein, a persistent luminescent nanobeacon is communicated to detect metal ions in real samples via avoiding background interference. The nanobeacon is constituted by persistent luminescence nanomaterials and metal-specific DNAzymes. As a proof of concept, ZnGeO: Mn persistent luminescence nanorods (PLNRs) was synthesized and functionalized with the 17E DNAzyme for lead ion (Pb) detection. As a result, in the luminescent manner, the nanobeacon could recognize Pb selectively and detect it with high signal-to-background ratios (SBR) both in buffer and real samples, but the fluorescent SBR declined significantly when used in real samples. Thus, this persistent luminescent nanobeacon can achieve practical detection of metal ions via avoiding background interference. Compared to previous methods of improving signal-to-background ratio, this persistent luminescent nanobeacon is more accessible, and all DNAzyme-specific ions can be directly adapted.

摘要

重金属离子被认为是水污染的最严重来源。准确检测金属离子对于污染控制和生态保护至关重要。背景干扰是复杂样品荧光分析中不可避免的障碍。在此,通过避免背景干扰,利用持久发光纳米信标来检测实际样品中的金属离子。该纳米信标由持久发光纳米材料和金属特异性 DNA 酶组成。作为概念验证,合成了 ZnGeO:Mn 持久发光纳米棒 (PLNRs),并用 17E DNA 酶对铅离子 (Pb) 进行了功能化。结果表明,在发光方式下,纳米信标可以选择性地识别 Pb,并在缓冲液和实际样品中以高信号与背景比 (SBR) 进行检测,但在实际样品中荧光 SBR 显著下降。因此,这种持久发光纳米信标可以通过避免背景干扰来实现实际的金属离子检测。与以前提高信号与背景比的方法相比,这种持久发光纳米信标更加容易实现,并且所有 DNA 酶特异性离子都可以直接适应。

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