
ABSTRACT Fluorescence correlation spectroscopy (FCS), is a flexible and widely used tool routinely exploited for in vivo and in vitro applications. While FCS provides estimates of dynamical quantities, such as diffusion coefficients, it demands high signal to noise ratios and long time traces, typically in the minute range. In principle, the same information can be extracted from µ -s long time traces; however, an appropriate analysis method is missing. To overcome these limitations, we adapt novel tools inspired by Bayesian non-parametrics, which starts from the direct analysis of the observed photon counts. With this approach, we are able to analyze time traces, which are too short to be analyzed by existing methods, including FCS. Our new analysis extends the capability of single molecule fluorescence confocal microscopy based approaches, to probe processes several orders of magnitude faster in time and permits a reduction of phototoxic effects on living samples induced by long periods of light exposure.
Microscopy, Microscopy, Confocal, Spectrometry, Science, Q, Optical Imaging, Bayes Theorem, Signal-To-Noise Ratio, 540, Physical Chemistry, Fluorescence, Article, Single Molecule Imaging, Spectrometry, Fluorescence, Confocal, Physical Sciences, Chemical Sciences, Biotechnology
Microscopy, Microscopy, Confocal, Spectrometry, Science, Q, Optical Imaging, Bayes Theorem, Signal-To-Noise Ratio, 540, Physical Chemistry, Fluorescence, Article, Single Molecule Imaging, Spectrometry, Fluorescence, Confocal, Physical Sciences, Chemical Sciences, Biotechnology
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