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Fluorescence Correlation Spectroscopy and Photon Counting Histograms in Finite Bounded Domains

机译:有限界域中的荧光相关光谱和光子计数直方图

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摘要

Analysis of fluctuations arising as fluorescent particles pass through a focused laser beam has enabled quantitative characterization of a broad range of molecular kinetic processes. Two key mathematical frameworks that have enabled these quantifications are fluorescence correlation spectroscopy (FCS) and photon counting histogram (PCH) analysis. Although these frameworks are effective and accurate when the focused laser beam is well approximated by an infinite Gaussian beam with a waist that is small compared to the size of the region over which the fluorescent particles can diffuse, they cannot be applied to situations in which this region is bounded at the nanoscale. We therefore derived general forms of the FCS and PCH frameworks for bounded systems. The finite-domain form of FCS differs from the classical form in its boundary and initial conditions and requires development of a new Fourier space solution for fitting data. Our finite-domain FCS predicts simulated data accurately and reduces to a previous model for the special case when the system is much larger than the Gaussian beam and can be considered to be infinite. We also derived the PCH form for the bounded systems. Our approach enables estimation of the concentration of diffusing fluorophores within a finite domain for the first time, to our knowledge. The method opens the possibility of quantification of kinetics in several systems for which this has never been possible.
机译:由于荧光粒子通过聚焦激光束而产生的波动的分析使得能够进行广泛的分子动力学方法的定量表征。使得这些量化的两个关键数学框架是荧光相关光谱(FCS)和光子计数直方图(PCH)分析。尽管当聚焦的激光束通过具有腰部的无限高斯光束的无限高斯光束与荧光粒子可以漫射的区域的大小相比,聚焦的激光束很好地近似时,但是当聚焦的高斯梁近似时,它们不能应用于这的情况区域是纳米级的界限。因此,我们为有界系统提供了FCS和PCH框架的一般形式。 FCS的有限域形式与其边界和初始条件中的经典形式不同,并且需要开发用于拟合数据的新的傅立叶空间解决方案。我们的有限域FCS准确地预测模拟数据,并在系统大于高斯光束的情况下为特殊情况降低到先前的模型,并且可以被认为是无限的。我们还导出了有界系统的PCH表格。我们的方法能够估计有限域内的扩散荧光团的浓度,这是我们的知识。该方法在几个系统中打开了量化动力学的可能性。

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