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Rapid Global Fitting of Large Fluorescence Lifetime Imaging Microscopy Datasets

机译:大型荧光寿命成像显微镜数据集的快速全局拟合

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摘要

Fluorescence lifetime imaging (FLIM) is widely applied to obtain quantitative information from fluorescence signals, particularly using Förster Resonant Energy Transfer (FRET) measurements to map, for example, protein-protein interactions. Extracting FRET efficiencies or population fractions typically entails fitting data to complex fluorescence decay models but such experiments are frequently photon constrained, particularly for live cell or in vivo imaging, and this leads to unacceptable errors when analysing data on a pixel-wise basis. Lifetimes and population fractions may, however, be more robustly extracted using global analysis to simultaneously fit the fluorescence decay data of all pixels in an image or dataset to a multi-exponential model under the assumption that the lifetime components are invariant across the image (dataset). This approach is often considered to be prohibitively slow and/or computationally expensive but we present here a computationally efficient global analysis algorithm for the analysis of time-correlated single photon counting (TCSPC) or time-gated FLIM data based on variable projection. It makes efficient use of both computer processor and memory resources, requiring less than a minute to analyse time series and multiwell plate datasets with hundreds of FLIM images on standard personal computers. This lifetime analysis takes account of repetitive excitation, including fluorescence photons excited by earlier pulses contributing to the fit, and is able to accommodate time-varying backgrounds and instrument response functions. We demonstrate that this global approach allows us to readily fit time-resolved fluorescence data to complex models including a four-exponential model of a FRET system, for which the FRET efficiencies of the two species of a bi-exponential donor are linked, and polarisation-resolved lifetime data, where a fluorescence intensity and bi-exponential anisotropy decay model is applied to the analysis of live cell homo-FRET data. A software package implementing this algorithm, FLIMfit, is available under an open source licence through the Open Microscopy Environment.
机译:荧光寿命成像(FLIM)已广泛应用于从荧光信号中获取定量信息,尤其是使用Förster共振能量转移(FRET)测量来绘制例如蛋白质-蛋白质相互作用的图。提取FRET效率或总体分数通常需要将数据拟合为复杂的荧光衰减模型,但是此类实验经常受到光子的约束,尤其是对于活细胞或体内成像,这导致在逐像素分析数据时出现不可接受的错误。但是,可以在假设生命周期分量在整个图像不变的情况下,使用全局分析更健壮地提取寿命和总体分数,以同时将图像或数据集中所有像素的荧光衰减数据拟合到多指数模型中(数据集)。通常认为这种方法过于缓慢和/或计算昂贵,但在此我们提出一种计算有效的全局分析算法,用于基于可变投影来分析时间相关的单光子计数(TCSPC)或时间门控FLIM数据。它有效地利用了计算机处理器和内存资源,只需不到一分钟的时间即可在标准个人计算机上用数百张FLIM图像分析时间序列和多孔板数据集。此寿命分析考虑了重复激发,包括由早期脉冲激发的荧光光子,从而促进了拟合,并且能够适应时变背景和仪器响应功能。我们证明了这种全局方法使我们能够轻松地将时间分辨的荧光数据拟合到复杂的模型,包括FRET系统的四指数模型,该模型将双指数供体的两种物种的FRET效率联系在一起,并且极化-解析的寿命数据,其中将荧光强度和双指数各向异性衰减模型应用于活细胞均FRET数据分析。通过Open Microscopy Environment,可以在开源许可下获得实现此算法的软件包FLIMfit。

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