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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >A new nanoprobe based on FRET between functional quantum dots and gold nanoparticles for fluoride anion and its applications for biological imaging
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A new nanoprobe based on FRET between functional quantum dots and gold nanoparticles for fluoride anion and its applications for biological imaging

机译:基于FRET的功能性量子点与金纳米粒子之间的新型纳米探针用于氟阴离子及其在生物成像中的应用

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摘要

A new nanoprobe was designed for the fluorescence imaging of fluoride anion (F ~-) in living cells with high sensitivity and selectivity. The design is based on the fluorescence resonance energy transfer (FRET) between CdTe quantum dots (CdTe QDs) and gold nanoparticles (AuNPs) through the formation of cyclic esters between phenylborinic acid and diol. In the presence of F ~-, the boronate ester, a "hard acid", strongly reacts with F ~-, a "hard base". Therefore, the boronate ester is converted to trifluoro borate, which causes the breakage of the linkage and disassembles CdTe QDs from AuNPs, resulting in the fluorescence recovery of the quenched CdTe QDs. The interaction mechanism was investigated by 19FNMR on a model that was constructed by a small molecule and F ~-. Quantum chemical calculations also testify the reactivity of boronate ester to F ~- and the sensing mechanism. Experimental results show that the increase in fluorescence intensity is proportional to the concentration of F ~- in the range of 5.0-45μM. The detection limit and the relative standard deviation were 50nM and 2.6%, respectively. Fluorescence imaging of F ~- in macrophages cells indicates good cell membrane penetration ability and low cytotoxicity of the nanoprobe, providing a viable alternative to detection of F ~- in biological or environmental samples.
机译:设计了一种新的纳米探针,用于高灵敏度和高选择性地对活细胞中的氟阴离子(F〜-)进行荧光成像。该设计基于CdTe量子点(CdTe QDs)与金纳米颗粒(AuNPs)之间的荧光共振能量转移(FRET),方法是在苯基硼酸和二醇之间形成环状酯。在F〜-的存在下,硼酸酯(一种“硬酸”)与F〜-(一种“硬碱”)强烈反应。因此,硼酸酯被转化为三氟硼酸酯,这会导致键的断裂并从AuNPs分解CdTe QD,从而导致淬灭的CdTe QD的荧光恢复。通过19 FNMR在由小分子和F〜-构建的模型上研究了相互作用机理。量子化学计算还证明了硼酸酯对F〜-的反应性和传感机理。实验结果表明,荧光强度的增加与F〜-的浓度成正比,范围为5.0-45μM。检出限和相对标准偏差分别为50nM和2.6%。巨噬细胞中F〜-的荧光成像表明纳米探针具有良好的细胞膜穿透能力和低细胞毒性,为检测生物或环境样品中的F〜-提供了可行的替代方法。

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