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Principles and Applications of Fluorescence Lifetime Correlation Spectroscopy

机译:荧光寿命相关光谱的原理和应用

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Two fluorescence spectroscopy concepts, fluorescence correlation spectroscopy and time correlated single photon counting (TCSPC) are employed in fluorescence lifetime correlation spectroscopy (FLCS) - a relatively new technique with several experimental benefits. In FLCS experiments, pulsed excitation is used and data are stored in a special time-tagged time-resolved mode. Mathematical treatment of TCSPC decay patterns of distinct fluorophores and their mixture enables to calculate autocorrelation functions of each of the fluorophores and thus their diffusion properties and concentrations can be determined separately. Moreover, crosscorrelation of the two signals can be performed and information on interaction of the species can be obtained. This technique is particularly helpful for distinguishing different states of the same fluorophore in different microenvironments. The first application of that concept represents the simultaneous determination of two-dimensional diffusion in planar lipid layers and three-dimensional vesicle diffusion in bulk above the lipid layers. The lifetime in both investigated systems differed because the lifetime of the dye is considerably quenched in the layer near the light-absorbing surface. This concept was also used in other applications: a) investigation of a conformational change of a labeled protein, b) detection of small amounts of labeled oligonucleotides bound to metal particles or c) elucidation of the compaction mechanism of different sized labeled DNA molecules. Moreover, it was demonstrated that FLCS can help to overcome some FCS experimental drawbacks.
机译:荧光寿命相关光谱(FLCS)中采用了两种荧光光谱概念,即荧光相关光谱和与时间相关的单光子计数(TCSPC),这是一种相对较新的技术,具有多项实验优势。在FLCS实验中,使用脉冲激励,并且数据以特殊的带时间标记的时间分辨模式存储。对不同荧光团及其混合物的TCSPC衰减模式进行数学处理,可以计算每个荧光团的自相关函数,因此可以分别确定其扩散特性和浓度。此外,可以执行两个信号的互相关,并且可以获得有关物种相互作用的信息。该技术对于区分不同微环境中相同荧光团的不同状态特别有用。该概念的第一个应用是同时测定平面脂质层中的二维扩散和脂质层上方的本体中的三维囊泡扩散。在两个所研究的系统中,寿命是不同的,因为染料的寿命在光吸收表面附近的层中被大大淬灭了。该概念还用于其他应用:a)研究标记蛋白质的构象变化,b)检测与金属颗粒结合的少量标记寡核苷酸,或c)阐明不同大小的标记DNA分子的紧缩机制。此外,事实证明,FLCS可以帮助克服一些FCS实验缺陷。

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