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通过相转移制备的用于双链DNA和单核苷酸多态性可视化检测的比率型量子点-配体系统

Ratiometric Quantum Dot-Ligand System Made by Phase Transfer for Visual Detection of Double-Stranded DNA and Single-Nucleotide Polymorphism.

作者信息

Liu Yuqian, Ye Mingfu, Ge Qinyu, Qu Xiaojun, Guo Qingsheng, Hu Xianyun, Sun Qingjiang

机构信息

State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, and Research Center for Learning Science, Southeast University , Nanjing 210096, People's Republic of China.

出版信息

Anal Chem. 2016 Feb 2;88(3):1768-74. doi: 10.1021/acs.analchem.5b04043. Epub 2016 Jan 25.

Abstract

We have developed a proof-of-concept quantum dot-ligand (QD-L) system for visual selective detection of nucleic acids, in combination with a ratiometric fluorescence technique. This system comprises a dual-emission QDs nanohybrid formed by embedding a red-emission QD (rQD) in a silica nanoparticle and electrostatically assembling green-emission QDs (gQDs) onto the silica surface, as the signal displaying unit, and a hydrophobic compound, dipyrido[3,2-a:2',3'-c]phenazine (dppz), attached onto the gQDs surface via phase transfer, as the ligand as well as fluorescence quencher of gQDs. This system is successfully used for quantification of double-stranded DNA (dsDNA). Because of its avid binding with dppz, dsDNA can break up the QD-L system, displacing the dppz ligand from the gQDs surface and restoring the gQDs emission. Since the red emission of embedded rQDs stays constant, variations of the dual-emission intensity ratios display continuous color changes from orange to bright green, which can be clearly observed by the naked eye. More importantly, this system is advantageous in terms of specificity over a QD ionic conjugate, because the electrical neutrality of dppz excludes its nonspecific electrostatic association with dsDNA. The QD-L system also is capable of detecting single-nucleotide polymorphism, exhibiting sequence-specific ratiometric fluorescence as a QD-bioconjugate does, but possessing the obvious advantage in terms of low cost, with the avoidance of modification, labeling, and purification processes. Therefore, the QD-L system provides an extremely simple but general strategy for detecting nucleic acids in a facile, sensitive, and specific manner.

摘要

我们结合比率荧光技术,开发了一种用于核酸可视化选择性检测的概念验证量子点-配体(QD-L)系统。该系统包括一个双发射量子点纳米杂化物,它由将红色发射量子点(rQD)嵌入二氧化硅纳米颗粒中,并将绿色发射量子点(gQDs)静电组装到二氧化硅表面形成,作为信号显示单元;以及一种疏水性化合物二吡啶并[3,2-a:2',3'-c]吩嗪(dppz),通过相转移附着在gQDs表面,作为配体以及gQDs的荧光猝灭剂。该系统成功用于双链DNA(dsDNA)的定量分析。由于dsDNA与dppz有强烈的结合作用,它可以破坏QD-L系统,将dppz配体从gQDs表面取代,从而恢复gQDs的发射。由于嵌入的rQDs的红色发射保持恒定,双发射强度比的变化呈现出从橙色到亮绿色的连续颜色变化,肉眼可以清晰观察到。更重要的是,该系统在特异性方面优于量子点离子共轭物,因为dppz的电中性排除了其与dsDNA的非特异性静电结合。QD-L系统还能够检测单核苷酸多态性,并像量子点生物共轭物一样表现出序列特异性比率荧光,但在低成本方面具有明显优势,避免了修饰、标记和纯化过程。因此,QD-L系统提供了一种极其简单但通用的策略,以简便、灵敏和特异的方式检测核酸。

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