Quérard Jérôme, Zhang Ruikang, Kelemen Zsolt, Plamont Marie-Aude, Xie Xiaojiang, Chouket Raja, Roemgens Insa, Korepina Yulia, Albright Samantha, Ipendey Eliane, Volovitch Michel, Sladitschek Hanna L, Neveu Pierre, Gissot Lionel, Gautier Arnaud, Faure Jean-Denis, Croquette Vincent, Le Saux Thomas, Jullien Ludovic
PASTEUR, Département de Chimie, École Normale Supérieure, UPMC Univ Paris 06, CNRS, PSL Research University, 75005, Paris, France.
Sorbonne Universités, UPMC Univ Paris 06, École Normale Supérieure, CNRS, PASTEUR, 75005, Paris, France.
Nat Commun. 2017 Oct 17;8(1):969. doi: 10.1038/s41467-017-00847-3.
We present speed out-of-phase imaging after optical modulation (OPIOM), which exploits reversible photoswitchable fluorophores as fluorescent labels and combines optimized periodic illumination with phase-sensitive detection to specifically retrieve the label signal. Speed OPIOM can extract the fluorescence emission from a targeted label in the presence of spectrally interfering fluorophores and autofluorescence. Up to four fluorescent proteins exhibiting a similar green fluorescence have been distinguished in cells either sequentially or in parallel. Speed OPIOM is compatible with imaging biological processes in real time in live cells. Finally speed OPIOM is not limited to microscopy but is relevant for remote imaging as well, in particular, under ambient light. Thus, speed OPIOM has proved to enable fast and quantitative live microscopic and remote-multiplexed fluorescence imaging of biological samples while filtering out noise, interfering fluorophores, as well as ambient light.Generally, fluorescence imaging needs to be done in a dark environment using molecules with spectrally separated emissions. Here, Quérard et al. develop a protocol for high-speed imaging and remote sensing of spectrally overlapping reversible photoswitchable fluorophores in ambient light.
我们展示了光调制后快速异相成像(OPIOM),它利用可逆光开关荧光团作为荧光标记,并将优化的周期性照明与相敏检测相结合,以特异性地检索标记信号。快速OPIOM能够在存在光谱干扰荧光团和自发荧光的情况下,提取目标标记的荧光发射。在细胞中,已能顺序或并行区分多达四种发出相似绿色荧光的荧光蛋白。快速OPIOM与实时成像活细胞中的生物过程兼容。最后,快速OPIOM不仅限于显微镜成像,对远程成像也适用,特别是在环境光下。因此,快速OPIOM已被证明能够在滤除噪声、干扰荧光团以及环境光的同时,对生物样品进行快速定量的活细胞显微镜和远程多路复用荧光成像。一般来说,荧光成像需要在黑暗环境中使用具有光谱分离发射的分子来进行。在此,凯拉尔等人开发了一种在环境光下对光谱重叠的可逆光开关荧光团进行高速成像和遥感的方法。