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Time-resolved delayed luminescence image microscopy using an europium ion chelate complex.

机译:使用using离子螯合配合物的时间分辨延迟发光图像显微镜。

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摘要

Improvements and extended applications of time-resolved delayed luminescence imaging microscopy (TR-DLIM) in cell biology are described. The emission properties of europium ion complexed to a fluorescent chelating group capable of labeling proteins are exploited to provide high contrast images of biotin labeled ligands through detection of the delayed emission. The streptavidin-based macromolecular complex (SBMC) employs streptavidin cross-linked to thyroglobulin multiply labeled with the europium-fluorescent chelate. The fluorescent chelate is efficiently excited with 340-nm light, after which it sensitizes europium ion emission at 612 nm hundreds of microseconds later. The SBMC complex has a high quantum yield orders of magnitude higher than that of eosin, a commonly used delayed luminescent probe, and can be readily seen by the naked eye, even in specimens double-labeled with prompt fluorescent probes. Unlike triplet-state phosphorescent probes, sensitized europium ion emission is insensitive to photobleaching and quenching by molecular oxygen; these properties have been exploited to obtain delayed luminescence images of living cells in aerated medium thus complementing imaging studies using prompt fluorescent probes. Since TR-DLIM has the unique property of rejecting enormous signals that originate from scattered light, autofluorescence, and prompt fluorescence it has been possible to resolve double emission images of living amoeba cells containing an intensely stained lucifer yellow in pinocytosed vesicles and membrane surface-bound SBMC-labeled biotinylated concanavalin A. Images of fixed cells represented in terms of the time decay of the sensitized emission show the lifetime of the europium ion emission is sensitive to the environment in which it is found. Through the coupling of SBMC to streptavidin,a plethora of biotin-based tracer molecules are available for immunocytochemical studies.
机译:描述了时间分辨延迟发光成像显微镜(TR-DLIM)在细胞生物学中的改进和扩展应用。通过检测延迟发射,与能够标记蛋白质的荧光螯合基团络合的euro离子的发射性质被用于提供高对比度的生物素标记配体图像。基于抗生蛋白链菌素的大分子复合物(SBMC)使用抗生蛋白链菌素交联至甲状腺球蛋白,并用multiply-荧光螯合物标记。荧光螯合物被340 nm光有效地激发,此后数百微秒后,它就会激发612 nm处的euro离子发射。 SBMC复合物具有比常用的延迟发光探针曙红高几个数量级的高量子产率,并且即使在用快速荧光探针双重标记的标本中也可以用肉眼轻易看到。与三重态磷光探针不同,敏化的ion离子发射对光漂白和分子氧猝灭不敏感。这些特性已经被利用来获得充气介质中活细胞的延迟发光图像,从而补充了使用快速荧光探针的成像研究。由于TR-DLIM具有独特的特性,可以拒绝源自散射光,自发荧光和即时荧光的大量信号,因此有可能解析出活的变形虫细胞的双发射图像,该细胞在胞吞小泡和膜表面结合时含有强烈染色的荧光素黄。 SBMC标记的生物素标记的伴刀豆球蛋白A。以敏化发射的时间衰减表示的固定细胞图像显示,ion离子发射的寿命对发现它的环境敏感。通过将SBMC与抗生蛋白链菌素偶联,大量基于生物素的示踪分子可用于免疫细胞化学研究。

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