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Functional Fluorescence Microscopy Imaging: Quantitative Scanning-Free Confocal Fluorescence Microscopy for the Characterization of Fast Dynamic Processes in Live Cells

机译:功能性荧光显微镜显像:无定量扫描的共聚焦荧光显微镜,用于表征活细胞中快速动态过程

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摘要

Functional fluorescence microscopy imaging (fFMI), a time-resolved (21 mu s/frame) confocal fluorescence microscopy imaging technique without scanning, is developed for quantitative characterization of fast reaction-transport processes in solution and in live cells. The method is based on massively parallel fluorescence correlation spectroscopy (FCS). Simultaneous excitation of fluorescent molecules in multiple spots in the focal plane is achieved using a diffractive optical element (DOE). Fluorescence from the DOE-generated 1024 illuminated spots is detected in a confocal arrangement by a matching matrix detector comprising 32 x 32 single-photon avalanche photodiodes (SPADs). Software for data acquisition and fast auto- and cross-correlation analysis by parallel signal processing using a graphic processing unit (GPU) allows temporal autocorrelation across all pixels in the image frame in 4 s and cross-correlation between first- and second-order neighbor pixels in 45 s. We present here this quantitative, time-resolved imaging method with single-molecule sensitivity and demonstrate its usefulness for mapping in live cell location-specific differences in the concentration and translational diffusion of molecules in different subcellular compartments. In particular, we show that molecules without a specific biological function, e.g., the enhanced green fluorescent protein (eGFP), exhibit uniform diffusion. In contrast, molecules that perform specialized biological functions and bind specifically to their molecular targets show location-specific differences in their concentration and diffusion, exemplified here for two transcription factor molecules, the glucocorticoid receptor (GR) before and after nuclear translocation and the Sex combs reduced (Scr) transcription factor in the salivary gland of Drosophila ex vivo.
机译:功能性荧光显微镜成像(FFMI),不扫描的时间分辨(21μs/框架)共聚焦荧光显微镜显微镜技术,用于定量表征溶液和活细胞中的快速反应转运过程。该方法基于大规模平行的荧光相关光谱(FCS)。使用衍射光学元件(DOE)实现焦平面中多个斑点中的荧光分子的同时激发。通过包括32×32单光子雪崩光电二极管(SPAD)的匹配矩阵检测器,在共聚谱布置中检测来自DOE产生的1024发光斑点的荧光。通过使用图形处理单元(GPU)的并行信号处理进行数据采集和快速自动和互相关分析的软件允许在4 S中的图像帧中的所有像素中的时间自相关,并在第一和二阶邻居之间的互相关45秒的像素。在这里,在这里存在这种定量,时间分辨的成像方法,具有单分子敏感性,并证明其在不同亚细胞隔室中分子中分子的浓度和平移扩散的特异性特异性差异的映射。特别地,我们表明没有特异性生物学功能的分子,例如增强的绿色荧光蛋白(EGFP),表现出均匀的扩散。相反,进行专用生物学功能并具体结合其分子靶标的分子显示它们的浓度和扩散的定位特异性差异,举例说明了两个转录因子分子,核易位前后的糖皮质激素受体(GR)和性梳子之后降低(SCR)果蝇患者的唾液腺中的转录因子。

著录项

  • 来源
    《Analytical chemistry》 |2019年第17期|共9页
  • 作者单位

    Karolinska Inst CMM Dept Clin Neurosci CNS S-17176 Stockholm Sweden;

    Karolinska Inst CMM Dept Clin Neurosci CNS S-17176 Stockholm Sweden;

    Karolinska Inst CMM Dept Clin Neurosci CNS S-17176 Stockholm Sweden;

    Max Planck Inst Mol Cell Biol &

    Genet D-01307 Dresden Germany;

    Sicoya GmbH D-12489 Berlin Germany;

    Hokkaido Univ Fac Adv Life Sci Lab Mol Cell Dynam Sapporo Hokkaido 0010021 Japan;

    Hokkaido Univ Fac Adv Life Sci Lab Mol Cell Dynam Sapporo Hokkaido 0010021 Japan;

    Royal Inst Technol Alballova Univ Ctr Dept Appl Phys S-10691 Stockholm Sweden;

    MPD I-39100 Bolzano Italy;

    Hokkaido Univ Fac Adv Life Sci Lab Mol Cell Dynam Sapporo Hokkaido 0010021 Japan;

    Karolinska Inst Dept Biosci &

    Nutr S-14183 Huddinge Sweden;

    Karolinska Inst CMM Dept Clin Neurosci CNS S-17176 Stockholm Sweden;

    Karolinska Inst CMM Dept Clin Neurosci CNS S-17176 Stockholm Sweden;

    Karolinska Inst CMM Dept Clin Neurosci CNS S-17176 Stockholm Sweden;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

  • 入库时间 2022-08-20 16:39:29

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