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Fluorescence lifetime imaging spectroscopy in living cells with particular regards to pH dependence and electric field effect

机译:活细胞中的荧光寿命成像光谱学,特别涉及pH依赖性和电场效应

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Intracellular pH of a single cell can be imaged using FLIM of enhanced green fluorescent protein (EGFP). The correlation between the intracellular pH and the fluorescence lifetime of EGFP in HeLa cells is explained by considering the pH-dependent acid-base equilibrium of the p-hydroxybenzylidene-imidazolidinone structure of the chromophore of EGFP. The equilibrium between different forms of chromophore depends on pH of the medium. The equilibrium constant between the neutral and anionic EGFP chromophores in HeLa cells is obtained by analyzing the fluorescence lifetimes observed with different values of intracellular pH. The intracellular pH dependence has been also observed in HeLa cells where enhanced yellow fluorescent protein (EYFP) is expressed. The pH dependence of the fluorescence lifetime of EYFP may result from the pH dependence of the molecular structure of the protein bound ionic form of EYFP or the conformational change of the EYFP chromophore induced by lowering pH. The fluorescence lifetimes both of EGFP and of EYFP are not uniform in the cell. At each pH, for example, the fluorescence lifetime of EGFP located near the outer cell membrane is shorter than those located inside cell, whereas the lifetime of EYFP located near the outer cell membrane is longer than those located inside the cell. These differences are ascribed to the different distribution of the electric field surrounding the fluorescent chromophore in the cells, implying that the chromophores of EGFP and EYFP show the opposite electric field effects of the fluorescence lifetime to each other. The fact that the fluorescence lifetime of BCECF in solution is different from the one observed at the same pH in intact cells of Halobacterium salinarum has been also ascribed to the local field produced by membranes in vivo.
机译:单个细胞的细胞内pH值可以使用增强型绿色荧光蛋白(EGFP)的FLIM成像。 HeLa细胞中细胞内pH值与EGFP荧光寿命之间的相关性是通过考虑EGFP发色团的对羟基苄叉基-咪唑啉酮结构的pH依赖性酸碱平衡来解释的。不同形式的生色团之间的平衡取决于介质的pH。通过分析在不同细胞内pH值下观察到的荧光寿命,获得HeLa细胞中性和阴离子EGFP发色团之间的平衡常数。在表达增强的黄色荧光蛋白(EYFP)的HeLa细胞中也观察到了细胞内pH依赖性。 EYFP荧光寿命的pH依赖性可能是由于EYFP的蛋白质结合离子形式的分子结构的pH依赖性或由于降低pH引起的EYFP发色团的构象变化所致。 EGFP和EYFP的荧光寿命在细胞中均不一致。例如,在每个pH值下,位于细胞外膜附近的EGFP的荧光寿命都比位于细胞内的EGFP的荧光寿命短,而位于细胞外膜附近的EYFP的荧光寿命则比位于细胞内的EFP的荧光寿命长。这些差异归因于细胞中荧光发色团周围电场的不同分布,这意味着EGFP和EYFP的发色团表现出彼此相反的荧光寿命电场效应。溶液中BCECF的荧光寿命不同于在盐杆菌(Halobacterium salinarum)完整细胞中在相同pH值下观察到的荧光寿命这一事实也归因于体内膜产生的局部场。

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