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Fluorophore Conjugated Silver Nanoparticles : A Time-resolved Fluorescence Correlation Spectroscopic Study

机译:荧光团共轭银纳米粒子:时间分辨荧光相关光谱研究。

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Fluorescence detection is a central component in biological research. In recent years there has been a growing interest in the interactions of fluorophores with metallic surfaces or particles. A single-stranded oligonucleotide was chemically bound to a single 50 nm diameter silver particle and a Cy5-labeled complementary single-stranded oligonucleotide was hybridized with the particle-bound oligonucleotide. The bound Cy5 molecules on the silver particles were spatially separated from the silver surface by the hybridized DNA duplex chains, which were about 8 nm in length, to reduce the competitive quenching. We use fluorescence lifetime correlation spectroscopy (FLCS) with picosecond time-resolved detection to separate the fluorescence correlation spectroscopy (FCS) contributions from fluorophores and metal-conjugated fluorophores. The single Cy5-labeled 50 nm silver particles displayed a factor of 15-fold increase in emission signal and 5-fold decrease in emission lifetimes in solution relative to the Cy5-DNA in the absence of metal. Lifetime measurements support the near-field interaction mechanism between the fluorophore and silver nanoparticle. In this study, FLCS is being applied to a system where the brightness and the fluorescent lifetime of the emitting species are significantly different. Our measurements suggest that FLCS is a powerful method for investigating the metal-fluorophore interaction at the single molecule level and to separate two different species from a mixture solution emitting at the same wavelength. Additionally, the highly bright Cy5-DNA-Ag molecules offer to be excellent probes in high background biological samples.
机译:荧光检测是生物学研究的重要组成部分。近年来,人们对荧光团与金属表面或颗粒之间的相互作用越来越感兴趣。将单链寡核苷酸化学结合到单个50 nm直径的银颗粒,并将Cy5标记的互补单链寡核苷酸与颗粒结合的寡核苷酸杂交。银颗粒上结合的Cy5分子通过长约8 nm的杂交DNA双链在空间上与银表面隔开,以减少竞争性猝灭。我们使用皮秒时间分辨检测的荧光寿命相关光谱(FLCS)来分离荧光基团和金属共轭荧光基团对荧光相关光谱(FCS)的贡献。相对于不存在金属的Cy5-DNA,单个Cy5标记的50 nm银粒子在溶液中的发射信号增加了15倍,在发射寿命中减少了5倍。寿命测量结果支持荧光团和银纳米粒子之间的近场相互作用机制。在这项研究中,FLCS被应用于发光物种的亮度和荧光寿命显着不同的系统。我们的测量结果表明,FLCS是研究单分子水平上的金属与荧光团相互作用并从以相同波长发射的混合溶液中分离出两种不同物质的有效方法。此外,高亮度Cy5-DNA-Ag分子在高背景生物学样品中提供了极好的探针。

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