Spriet Corentin, Trinel Dave, Waharte François, Deslee Didier, Vandenbunder Bernard, Barbillat Jacques, Héliot Laurent
Biophotonique Cellulaire Fonctionnelle, FRE 2963, Institut de Recherche Interdisciplinaire, 59021 Lille Cedex, France.
Microsc Res Tech. 2007 Feb;70(2):85-94. doi: 10.1002/jemt.20385.
Studies of proteins' interaction in cells by FRET can take benefit from two important photo-physical properties describing fluorescent proteins: fluorescence emission spectrum and fluorescence lifetime. These properties provide specific and complementary information about the tagged proteins and their environment. However, none of them taken individually can completely quantify the involved fluorophore characteristics due to their multiparametric dependency with molecular environment, experimental conditions, and interpretation complexity. A solution to get a better understanding of the biological process implied at the cellular level is to combine the spectral and temporal fluorescence data acquired simultaneously at every cell region under investigation. We present the SLiM-SPRC160, an original temporal/spectral acquisition system for simultaneous lifetime measurements in 16 spectral channels directly attached to the descanned port of a confocal microscope with two-photon excitation. It features improved light throughput, enabling low-level excitation and minimum invasivity in living cells studies. To guarantee a fairly good level of accuracy and reproducibility in the measurements of fluorescence lifetime and spectra on living cells, we propose a rigorous protocol for running experiments with this new equipment that preserves cell viability. The usefulness of SLiM approach for the precise determination of overlapping fluorophores is illustrated with the study of known solutions of rhodamine. Then, we describe reliable FRET experiments in imaging mode realized in living cells using this protocol. We also demonstrate the benefit of localized fluorescence spectrum-lifetime acquisitions for the dynamic study of fluorescent proteins. proteins.
通过荧光共振能量转移(FRET)对细胞中蛋白质相互作用进行的研究,可以受益于描述荧光蛋白的两个重要光物理特性:荧光发射光谱和荧光寿命。这些特性提供了有关标记蛋白质及其环境的特定且互补的信息。然而,由于它们与分子环境、实验条件以及解释复杂性的多参数依赖性,单独采用其中任何一个特性都无法完全量化所涉及的荧光团特性。为了更好地理解细胞水平上隐含的生物过程,一种解决方案是将在每个被研究的细胞区域同时获取的光谱和时间荧光数据相结合。我们展示了SLiM-SPRC160,这是一种原始的时间/光谱采集系统,用于在16个光谱通道中同时进行寿命测量,该系统直接连接到具有双光子激发的共聚焦显微镜的反扫描端口。它具有更高的光通量,能够在活细胞研究中实现低水平激发并将侵入性降至最低。为了在活细胞的荧光寿命和光谱测量中保证相当高的准确性和可重复性,我们提出了一种使用这种新设备进行实验的严格方案,该方案可保持细胞活力。通过对罗丹明已知溶液的研究,说明了SLiM方法在精确测定重叠荧光团方面的有用性。然后,我们描述了使用该方案在活细胞中以成像模式实现的可靠FRET实验。我们还展示了局部荧光光谱 - 寿命采集对于荧光蛋白动态研究的益处。