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活细胞中 FRET 的快速时域 FLIM 的时空定量:非拟合方法的比较研究[已更正]。

Spatio-Temporal Quantification of FRET in living cells by fast time-domain FLIM: a comparative study of non-fitting methods [corrected].

机构信息

Institut de Recherche Interdisciplinaire, USR 3078 CNRS, Université de Lille-Nord de France, Biophotonique Cellulaire Fonctionnelle, Villeneuve d'Ascq, France.

出版信息

PLoS One. 2013 Jul 18;8(7):e69335. doi: 10.1371/journal.pone.0069335. Print 2013.

Abstract

Förster Resonance Energy Transfer (FRET) measured with Fluorescence Lifetime Imaging Microscopy (FLIM) is a powerful technique to investigate spatio-temporal regulation of protein-protein interactions in living cells. When using standard fitting methods to analyze time domain FLIM, the correct estimation of the FRET parameters requires a high number of photons and therefore long acquisition times which are incompatible with the observation of dynamic protein-protein interactions. Recently, non-fitting strategies have been developed for the analysis of FLIM images: the polar plot or "phasor" and the minimal fraction of interacting donor mfD . We propose here a novel non-fitting strategy based on the calculation of moments. We then compare the performance of these three methods when shortening the acquisition time: either by reducing the number of counted photons N or the number of temporal channels Nch , which is particularly adapted for the original fast-FLIM prototype presented in this work that employs the time gated approach. Based on theoretical calculations, Monte Carlo simulations and experimental data, we determine the domain of validity of each method. We thus demonstrate that the polar approach remains accurate for a large range of conditions (low N, Nch or small fractions of interacting donor fD ). The validity domain of the moments method is more restricted (not applicable when fD <0.25 or when Nch  = 4) but it is more precise than the polar approach. We also demonstrate that the mfD is robust in all conditions and it is the most precise strategy; although it does not strictly provide the fraction of interacting donor. We show using the fast-FLIM prototype (with an acquisition rate up to 1 Hz) that these non-fitting strategies are very powerful for on-line analysis on a standard computer and thus for quantifying automatically the spatio-temporal activation of Rac-GTPase in living cells by FRET.

摘要

荧光寿命成像显微镜(FLIM)的Förster 共振能量转移(FRET)测量是一种强大的技术,可用于研究活细胞中蛋白质-蛋白质相互作用的时空调节。当使用标准拟合方法分析时域 FLIM 时,正确估计 FRET 参数需要大量光子,因此需要较长的采集时间,这与动态蛋白质-蛋白质相互作用的观察不兼容。最近,已经开发出用于分析 FLIM 图像的非拟合策略:极坐标图或“相图”和最小相互作用供体分数 mfD 。我们在这里提出了一种基于矩计算的新非拟合策略。然后,我们比较了在缩短采集时间时这三种方法的性能:要么减少计数的光子数 N,要么减少时间通道数 Nch ,这对于本工作中提出的原始快速-FLIM 原型特别适用,该原型采用时间门控方法。基于理论计算、蒙特卡罗模拟和实验数据,我们确定了每种方法的有效域。因此,我们证明了极坐标方法在很大的条件范围内仍然是准确的(低 N、Nch 或小的相互作用供体分数 fD )。矩方法的有效域更为受限(当 fD <0.25 或 Nch =4 时不适用),但比极坐标方法更精确。我们还证明 mfD 在所有条件下都是稳健的,并且是最精确的策略;尽管它没有严格提供相互作用供体的分数。我们使用快速-FLIM 原型(采集率高达 1 Hz)证明,这些非拟合策略在标准计算机上进行在线分析非常强大,因此可以自动定量测量活细胞中 Rac-GTPase 通过 FRET 的时空激活。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ecfa/3715500/a5d18f5bd5b4/pone.0069335.g001.jpg

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