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Enhancing the Sensitivity of Fluorescence Correlation Spectroscopy by Using Time-Correlated Single Photon Counting

机译:通过使用时间相关的单光子计数来增强荧光相关光谱的灵敏度

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Fluorescence correlation spectroscopy (FCS) and fluorescence cross-correlation spectroscopy (FCCS) are methods that extract information about a sample from the influence of thermodynamic equilibrium fluctuations on the fluorescence intensity. This method allows dynamic information to be obtained from steady state equilibrium measurements and its popularity has dramatically increased in the last 10 years due to the development of high sensitivity detectors and its combination with confocal microscopy. Using time-correlated single-photon counting (TCSPC) detection and pulsed excitation, information over the duration of the excited state can be extracted and incorporated in the analysis. In this short review, we discuss new methodologies that have recently emerged which incorporated fluorescence lifetime information or TCSPC data in the FCS and FCCS analysis. Time-gated FCS discriminates between which photons are to be incorporated in the analysis dependent upon their arrival time after excitation. This allows for accurate FCS measurements in the presence of fluorescent background, determination of sample homogeneity, and the ability to distinguish between static and dynamic heterogeneities. A similar method, time-resolved FCS can be used to resolve the individual correlation functions from multiple fluorophores through the different fluorescence lifetimes. Pulsed interleaved excitation (PIE) encodes the excitation source into the TCSPC data. PIE can be used to perform dual-channel FCCS with a single detector and allows elimination of spectral cross-talk with dual-channel detection. For samples that undergo fluorescence resonance energy transfer (FRET), quantitative FCCS measurements can be performed in spite of the FRET and the static FRET efficiency can be determined.
机译:荧光相关光谱(FCS)和荧光互相关光谱(FCCS)是从热力学平衡涨落对荧光强度的影响中提取有关样品信息的方法。这种方法可以从稳态平衡测量中获得动态信息,并且由于高灵敏度检测器的发展及其与共聚焦显微镜的结合,其流行度在最近十年中得到了极大提高。使用与时间相关的单光子计数(TCSPC)检测和脉冲激发,可以提取激发态持续时间内的信息并将其纳入分析。在这篇简短的评论中,我们讨论了最近出现的新方法,这些方法在FCS和FCCS分析中纳入了荧光寿命信息或TCSPC数据。时间门控FCS根据光子在激发后的到达时间来区分在分析中要合并的光子。这样可以在存在荧光背景的情况下进行准确的FCS测量,确定样品的均质性以及区分静态和动态异质性的能力。时间分辨的FCS是一种类似的方法,可用于通过不同的荧光寿命来解析多个荧光团的各个相关函数。脉冲交错激励(PIE)将激励源编码为TCSPC数据。 PIE可以用于通过单个检测器执行双通道FCCS,并可以通过双通道检测消除频谱串扰。对于经历荧光共振能量转移(FRET)的样品,尽管有FRET,仍可以执行定量FCCS测量,并且可以确定静态FRET效率。

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