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Fluorescence Correlation Spectroscopy: Criteria for Analysis in Complex Systems

机译:荧光相关光谱:复杂系统中的分析标准

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摘要

We have evaluated the effect of varying three key parameters for Fluorescence Correlation Spectroscopy analysis, first in the context of a one species/one environment system, and then in a complex system composed of two species, or conversely, two environments. We establish experimentally appropriate settings for the (1) minimum lag time, (2) maximum lag time, and (3) averaging times over which an autocorrelation is carried out, as a function of expected diffusion decay time for a particular solute, and show that use of appropriate settings plays a critical role in recovering accurate and reliable decay times and resulting diffusion constants. Both experimental and simulated data were used to show that for a complex binary system, to extract accurate diffusion constants for both species, decay times must be bounded by adequate minimum and maximum lag times as dictated by the fast and slow diffusing species, respectively. We also demonstrate that even when constraints on experimental conditions do not permit achieving the necessary lag time limits for both of the species in a binary system, the accuracy of the recovered diffusion constant for the one species whose autocorrelation function is fully time-resolved is unaffected by uncertainty in fitting introduced by the presence of the second species.
机译:我们已经评估了在荧光相关光谱分析中改变三个关键参数的效果,首先是在一个物种/一个环境系统的背景下,然后是在由两个物种或相反的两个环境组成的复杂系统中。我们针对(1)最小滞后时间,(2)最大滞后时间和(3)进行自相关的平均时间建立实验上合适的设置,以特定溶质的预期扩散衰减时间为函数,并显示使用适当的设置在恢复准确和可靠的衰减时间以及由此产生的扩散常数方面起着至关重要的作用。实验数据和模拟数据均显示,对于复杂的二元系统,要提取两种物质的准确扩散常数,衰减时间必须分别由快速和慢速扩散物质所规定的足够的最小和最大滞后时间限制。我们还证明,即使在实验条件上的限制不允许在二元系统中为两个物种都达到必要的滞后时间限制,对于自相关函数已完全时间分辨的一个物种,恢复的扩散常数的准确性也不受影响。由于第二物种的存在而导致的拟合不确定性。

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