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Single pulse two-photon fluorescence lifetime imaging (SP-FLIM) with MHz pixel rate and an all fiber based setup

机译:单脉冲双光子荧光寿命成像(SP-FLIM),像素速率为MHz,基于全光纤的设置

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摘要

Newly developed microscopy methods have the goal to give researches in bio-molecular science a better understanding of processes ongoing on a cellular level. Especially two-photon excited fluorescence (TPEF) microscopy is a readily applied and widespread modality. Compared to one photon fluorescence imaging, it is possible to image not only the surface but also deeper lying structures. Together with fluorescence lifetime imaging (FLIM), which provides information on the chemical composition of a specimen, deeper insights on a molecular level can be gained. However, the need for elaborate light sources for TPEF and speed limitations for FLIM hinder an even wider application. In this contribution, we present a way to overcome this limitations by combining a robust and inexpensive fiber laser for nonlinear excitation with a fast analog digitization method for rapid FLIM imaging. The applied sub nanosecond pulsed laser source is perfectly suited for fiber delivery as typically limiting non-linear effects like self-phase or cross-phase modulation (SPM, XPM) are negligible. Furthermore, compared to the typically applied femtosecond pulses, our longer pulses produce much more fluorescence photons per single shot. In this paper, we show that this higher number of fluorescence photons per pulse combined with a high analog bandwidth detection makes it possible to not only use a single pulse per pixel for TPEF imaging but also to resolve the exponential time decay for FLIM. To evaluate our system, we acquired FLIM images of a dye solution with single exponential behavior to assess the accuracy of our lifetime determination and also FLIM images of a plant stem at a pixel rate of 1 MHz to show the speed performance of our single pulse two-photon FLIM (SP-FLIM) system.
机译:最新开发的显微镜方法的目的是使生物分子科学研究对细胞水平上正在进行的过程有更好的了解。尤其是双光子激发荧光(TPEF)显微镜是一种易于应用且广泛使用的形式。与单光子荧光成像相比,不仅可以成像表面,还可以成像更深的结构。与提供有关标本化学成分信息的荧光寿命成像(FLIM)一起,可以获得有关分子水平的更深入的见解。但是,对于TPEF的精密光源和FLIM的速度限制的需求阻碍了其更广泛的应用。在这项贡献中,我们提出了一种克服此局限性的方法,将坚固耐用且价格低廉的用于非线性激发的光纤激光器与用于快速FLIM成像的快速模拟数字化方法相结合。所施加的亚纳秒脉冲激光源非常适合光纤传输,因为通常可以忽略非线性影响,例如自相位或交叉相位调制(SPM,XPM)。此外,与通常使用的飞秒脉冲相比,我们更长的脉冲每单发会产生更多的荧光光子。在本文中,我们表明,每个脉冲具有更高数量的荧光光子,并具有较高的模拟带宽检测能力,因此不仅可以将每个像素单个脉冲用于TPEF成像,而且可以解决FLIM的指数时间衰减。为了评估我们的系统,我们获取了具有单指数行为的染料溶液的FLIM图像以评估我们的寿命确定的准确性,还获取了植物茎的FLIM图像以1 MHz的像素速率显示了单脉冲2的速度性能。 -光子FLIM(SP-FLIM)系统。

著录项

  • 来源
    《Advances in microscopic imaging》|2017年|1041403.1-1041403.7|共7页
  • 会议地点 Munich(DE)
  • 作者单位

    Institut fur Biomedizinische Optik, Universitat zu Luebeck, Liibeck, Peter-Monnik-Weg 4, 23562 Luebeck, Germany;

    Department of Electrical Engineering, University of California, Los Angeles, California 90095, USA;

    Institut fur Biomedizinische Optik, Universitat zu Luebeck, Liibeck, Peter-Monnik-Weg 4, 23562 Luebeck, Germany;

    Institut fur Biomedizinische Optik, Universitat zu Luebeck, Liibeck, Peter-Monnik-Weg 4, 23562 Luebeck, Germany;

    Institut fur Biomedizinische Optik, Universitat zu Luebeck, Liibeck, Peter-Monnik-Weg 4, 23562 Luebeck, Germany;

    Institut fur Biomedizinische Optik, Universitat zu Luebeck, Liibeck, Peter-Monnik-Weg 4, 23562 Luebeck, Germany;

    Institut fur Biomedizinische Optik, Universitat zu Luebeck, Liibeck, Peter-Monnik-Weg 4, 23562 Luebeck, Germany;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nonlinear microscopy; Fluorescence microscopy; Fiber optics imaging; Lasers; fiber; Nonlinear optics; fibers; Lifetime-based sensing;

    机译:非线性显微镜荧光显微镜光纤成像;激光;纤维;非线性光学纤维;基于生命的感知;
  • 入库时间 2022-08-26 14:30:36

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