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Time-Resolved Long-Lived Luminescence Imaging Method Employing Luminescent Lanthanide Probes with a New Microscopy System

机译:时间分辨的长寿命发光成像方法,该方法采用了具有新型显微镜系统的发光镧系元素探针。

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摘要

Superior fluorescence imaging methods are needed for detailed studies on biological phenomena, and one approach that permits precise analyses is time-resolved fluorescence measurement, which offers a high signal-to-noise ratio. Herein, we describe a new fluorescence imaging system to visualize biomolecules within living biological samples by means of time-resolved, long-lived luminescence microscopy (TRLLM). In TRLLM, short-lived background fluorescence and scattered light are gated out, allowing the long-lived luminescence to be selectively imaged. Usual time-resolved fluorescence microscopy provides fluorescence images with nanosecond resolution and has been used to image interactions between proteins, protein phosphorylation, the local pH, the refractive index, ion or oxygen concentrations, etc. Luminescent lanthanide complexes (especially europium and terbium trivalent ions (Eu~(3+) and Tb~(3+))), in contrast, have long luminescence lifetimes on the order of milliseconds. We have designed and synthesized new luminescent Eu~(3+) complexes for TRLLM and also developed a new TRLLM system using a conventional fluorescence microscope with an image intensifier unit for gated signal acquisition and a xenon flash lamp as the excitation source. When the newly developed luminescent Eu~(3+) complexes were applied to living cells, clear fluorescence images were acquired with the TRLLM system, and short-lived fluorescence was completely excluded. By using Eu~(3+) and Tb~(3+) luminescent complexes in combination, time-resolved dual-color imaging was also possible. Furthermore, we monitored changes of intracellular ionic zinc (Zn~(2+)) concentration by using a Zn~(2+)-selective luminescent Eu~(3+) chemosensor, [Eu-7]. This new imaging technique should facilitate investigations of biological functions with fluorescence microscopy, complementing other fluorescence imaging methodologies.
机译:对于生物学现象的详细研究,需要出色的荧光成像方法,而允许精确分析的一种方法是时间分辨荧光测量,该方法可提供高信噪比。在这里,我们描述了一种新的荧光成像系统,以通过时间分辨的长寿命发光显微镜(TRLLM)可视化活生物样品中的生物分子。在TRLLM中,将短暂的背景荧光和散射光排除在外,从而可以选择性地对长时间的发光进行成像。通常的时间分辨荧光显微镜可以提供纳秒级分辨率的荧光图像,并已用于成像蛋白质,蛋白质磷酸化,局部pH,折射率,离子或氧浓度等之间的相互作用。发光镧系元素络合物(特别是euro和三价离子)相反,(Eu〜(3+)和Tb〜(3+)))的发光寿命很长,约为毫秒。我们设计并合成了用于TRLLM的新型发光Eu〜(3+)配合物,还开发了一种新的TRLLM系统,该系统使用常规的荧光显微镜,具有用于门控信号采集的图像增强单元和氙气闪光灯作为激发源。当将新开发的发光Eu〜(3+)配合物应用于活细胞时,利用TRLLM系统获得了清晰的荧光图像,而短寿命荧光被完全排除了。通过组合使用Eu〜(3+)和Tb〜(3+)发光配合物,时间分辨双色成像也是可能的。此外,我们通过使用Zn〜(2 +)-选择性发光Eu〜(3+)化学传感器[Eu-7]监测细胞内离子锌(Zn〜(2+))浓度的变化。这种新的成像技术应有助于利用荧光显微镜对生物学功能进行研究,以补充其他荧光成像方法。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2007年第44期|p.13502-13509|共8页
  • 作者单位

    Contribution from the Graduate School of Pharmaceutical Sciences, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

  • 入库时间 2022-08-18 03:21:37

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