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首页> 外文期刊>Biophysical Journal >Quantitative FRET analysis by fast acquisition time domain FLIM at high spatial resolution in living cells.
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Quantitative FRET analysis by fast acquisition time domain FLIM at high spatial resolution in living cells.

机译:通过活细胞中高空间分辨率的快速采集时域FLIM进行定量FRET分析。

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Quantitative analysis in Forster resonance energy transfer (FRET) experiments in live cells for protein interaction studies is still a challenging issue. In a two-component system (FRET and no FRET donor species), fitting of fluorescence lifetime imaging microscopy (FLIM) data gives the fraction of donor molecules involved in FRET (f(D)) and the intrinsic transfer efficiency. But when fast FLIM acquisitions are used to monitor dynamic changes in protein-protein interactions at high spatial and temporal resolutions in living cells, photon statistics and time resolution are limited. In this case, fitting procedures are not reliable, even for single lifetime donors. We introduce the new concept of a minimal fraction of donor molecules involved in FRET (mf(D)), coming from the mathematical minimization of f(D). We find particular advantage in the use of mf(D) because it can be obtained without fitting procedures and it is derived directly from FLIM data. mf(D) constitutes an interesting quantitative parameter for live cell studies because it is related to the minimal relative concentration of interacting proteins. For multi-lifetime donors, the process of fitting complex fluorescence decays to find at least four reliable lifetimes is a near impossible task. Here, mf(D) extension for multi-lifetime donors is the only quantitative determinant. We applied this methodology for imaging the interaction between the bromodomains of TAF(II250) and acetylated histones H4 in living cells at high resolution. We show the existence of discrete acetylated chromatin domains where the minimal fraction of bromodomain interacting with acetylated H4 oscillates from 0.26 to 0.36 and whose size is smaller than half of one micron cube. We demonstrate that mf(D) by itself is a useful tool to investigate quantitatively protein interactions in live cells, especially when using fast FRET-FLIM acquisition times.
机译:用于蛋白质相互作用研究的活细胞中Forster共振能量转移(FRET)实验中的定量分析仍然是一个具有挑战性的问题。在两组分系统(FRET和无FRET供体物种)中,荧光寿命成像显微镜(FLIM)数据的拟合给出了参与FRET的供体分子比例(f(D))和固有转移效率。但是,当快速FLIM采集用于在活细胞中以高空间和时间分辨率监视蛋白质-蛋白质相互作用的动态变化时,光子统计和时间分辨率将受到限制。在这种情况下,即使对于单身一生的捐献者,拟合程序也不可靠。我们介绍了一种新的概念,即从f(D)的数学最小化出发,涉及FRET(mf(D))的供体分子的最小分数。我们发现使用mf(D)具有特别的优势,因为无需拟合程序即可获得它,并且它直接来自FLIM数据。 mf(D)构成活细胞研究的一个有趣的定量参数,因为它与相互作用蛋白的最小相对浓度有关。对于多寿命供体,拟合复杂荧光衰变以找到至少四个可靠寿命的过程几乎是不可能的任务。在这里,多寿命供体的mf(D)扩展是唯一的定量决定因素。我们应用此方法对TAF(II250)溴结构域和乙酰化组蛋白H4在活细胞中的相互作用进行高分辨率成像。我们显示了离散的乙酰化染色质域的存在,其中溴化域与乙酰化H4相互作用的最小部分从0.26到0.36振荡,并且其大小小于一个微米立方体的一半。我们证明mf(D)本身是定量研究活细胞中蛋白质相互作用的有用工具,尤其是在使用快速FRET-FLIM采集时间时。

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