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Phasor imaging with a widefield photon-counting detector

机译:用宽场光子计数检测器进行相量成像

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摘要

Fluorescence lifetime can be used as a contrast mechanism to distinguish fluorophores for localization or tracking, for studying molecular interactions, binding, assembly, and aggregation, or for observing conformational changes via Foerster resonance energy transfer (FRET) between donor and acceptor molecules. Fluorescence lifetime imaging microscopy (FLIM) is thus a powerful technique but its widespread use has been hampered by demanding hardware and software requirements. FLIM data is often analyzed in terms of multicomponent fluorescence lifetime decays, which requires large signals for a good signal-to-noise ratio. This confines the approach to very low frame rates and limits the number of frames which can be acquired before bleaching the sample. Recently, a compu tationally efficient and intuitive graphical representation, the phasor approach, has been proposed as an alternative method for FLIM data analysis at the ensemble and single-molecule level. In this article, we illustrate the advantages of combining phasor analysis with a widefield time-resolved single photon-counting detector (the H33D detector) for FLIM applications. In particular we show that phasor analysis allows real-time subsecond identification of species by their lifetimes and rapid representation of their spatial distribution, thanks to the parallel acquisition of FLIM information over a wide field of view by the H33D detector. We also discuss possible improvements of the H33D detector's performance made possible by the simplicity of phasor analysis and its relaxed timing accuracy requirements compared to standard time-correlated single-photon counting (TCSPC) methods.
机译:荧光寿命可以用作对比机制,以区分荧光团的定位或跟踪,研究分子的相互作用,结合,组装和聚集,或通过供体和受体分子之间的Foerster共振能量转移(FRET)观察构象变化。因此,荧光寿命成像显微镜(FLIM)是一项功能强大的技术,但由于苛刻的硬件和软件要求,其广泛使用受到了阻碍。通常根据多组分荧光寿命衰减来分析FLIM数据,这需要大信号才能获得良好的信噪比。这将方法限制为非常低的帧速率,并限制了在漂白样本之前可以获取的帧数。近来,已经提出了一种计算有效且直观的图形表示,相量法,作为在集成和单分子水平上进行FLIM数据分析的另一种方法。在本文中,我们说明了将相量分析与宽域时间分辨单光子计数检测器(H33D检测器)相结合的优势,适用于FLIM应用。特别是,我们证明了相量分析可以通过生命周期和空间分布的快速表示来对亚种进行实时亚秒级识别,这要归功于H33D检测器在宽视场上对FLIM信息的并行获取。与标准的时间相关单光子计数(TCSPC)方法相比,我们还将讨论通过相量分析的简单性及其宽松的定时精度要求,可以实现H33D检测器性能的可能改进。

著录项

  • 来源
    《Journal of biomedical optics》 |2012年第1期|p.016008.1-016008.12|共12页
  • 作者单位

    UCLA, Department of Chemistry and Biochemistry, 607 Charles E. Young Drive East, Los Angeles, California;

    Space Sciences Laboratory, UCES, 7 Gauss Way, Berkeley, California;

    Space Sciences Laboratory, UCES, 7 Gauss Way, Berkeley, California;

    Space Sciences Laboratory, UCES, 7 Gauss Way, Berkeley, California;

    UCLA, Department of Chemistry and Biochemistry, 607 Charles E. Young Drive East, Los Angeles, California;

    UCLA, Department of Chemistry and Biochemistry, 607 Charles E. Young Drive East, Los Angeles, California;

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

    detectors; fluorescence; imaging; laser-induced fluorescence; microscopy;

    机译:探测器荧光成像激光诱导的荧光显微镜检查;

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