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Fluorescence resonance energy transfer (FRET) imaging of a single living cell using green fluorescent protein

机译:使用绿色荧光蛋白的单个活细胞的荧光共振能量转移(FRET)成像

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Abstract: Fluorescence resonance energy transfer (FRET) imaging microscopy is a unique tool to visualize the spatiotemporal dynamics of protein interactions in living cells. Genetic vectors that encode protein fusions with green fluorescent protein (GFP) provide a method for imaging protein localization in living cells. We used FRET to study dimerization of the pituitary-specific transcription factor Pit-1 fused to GFP and BFP. A fusion protein containing GFP separated from BFP by 29 amino acids served as a positive control for FRET. Transcriptional activity of the GFP- and BFP-Pit-1 fusion proteins was demonstrated by their ability to activate the prolactin gene promoter. Using optimized excitation and emission filters, cells expressing the fluorescently-tagged Pit-1 proteins were imaged with a back- thinned, back-illuminated CCD chip that has about 50% quantum efficiency in the blue range. 2D FRET images acquired at the focal plane demonstrated Pit-1 protein associations in the nucleus of living cells. The significance of 2- and 3-D energy transfer imaging from these living cells is discussed.!26
机译:摘要:荧光共振能量转移(FRET)成像显微镜是一种独特的工具,可以可视化活细胞中蛋白质相互作用的时空动态。编码与绿色荧光蛋白(GFP)融合蛋白的遗传载体提供了一种成像蛋白在活细胞中定位的方法。我们使用FRET研究与GFP和BFP融合的垂体特异性转录因子Pit-1的二聚化。含有GFP的融合蛋白从BFP中分离出29个氨基酸,作为FRET的阳性对照。 GFP-和BFP-Pit-1融合蛋白的转录活性通过其激活催乳素基因启动子的能力得到证明。使用优化的激发和发射滤光片,使用背照稀薄,背照式CCD芯片对表达荧光标记的Pit-1蛋白的细胞进行成像,该芯片在蓝色范围内具有约50%的量子效率。在焦平面采集的2D FRET图像显示了活细胞核中的Pit-1蛋白缔合。讨论了从这些活细胞进行2维和3维能量转移成像的重要性!26

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