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Time-resolved imaging fluorescence microscopy

机译:时间分辨成像荧光显微镜

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The extension of microscope luminescence measurements into the temporal domain provides the possibility of determining time- resolved properties of microscope samples and their surrounding environments, and thereby extends the conventional steady state measurements. `Time resolved imaging microscopy' is a relatively new technique whereby fast kinetic and luminescence decay parameters (decay times and the corresponding time or phase resolved amplitudes) are directly and simultaneously measured throughout an image, pixel by pixel, in an optical microscope. Molecular rotation, solvent and matrix relaxation, quenching mechanisms, reactions, and energy transfer are examples of molecular spectroscopic processes that can be studied best by directly measuring the time dependent properties. Dynamic measurements are generally much more informative than their steady state counterparts. The goal of our work is to develop time-resolved methods that can be applied conveniently and routinely to biological material in the microscope over a wide time domain. In addition to the augmented purely spectroscopic and reaction kinetic information, simultaneous spatial and temporal resolution of an image in a microscope provides significant improvement in image contrast, probe identification and differentiation, background (light scattering and inherent luminescence) reduction, and provides additional parameters for digital image analysis. Time resolution makes it possible to recover structures in an image concealed by background luminescence with a different lifetime. Examples of these procedures are given, and the instrumentation required for the data acquisition and analysis is discussed. The technique employs phase-locked coordination between the modulation of the perturbation and the recording of the luminescence image together with a Photometrics (Tucson, Ariz.) series 200 high resolution slow-scan scientific CCD camera. A normal fluorescence microscope is used.
机译:显微镜发光测量到时间域的延伸提供了确定显微镜样品及其周围环境的时间分辨性能,从而扩展了传统的稳态测量。 `时间分辨的成像显微镜是一种相对较新的技术,其中快速动力学和发光衰减参数(衰减时间和相应的时间或相位分辨的幅度)在光学显微镜中直接和同时测量图像,像素的像素。分子旋转,溶剂和基质松弛,淬火机制,反应和能量转移是可以通过直接测量时间依赖性来研究的分子光谱过程的实例。动态测量通常比其稳态对应物更具信息量。我们的作品的目标是开发时间解决方法,可以方便地应用于显微镜中的生物材料在宽时域中。除了增强纯度光谱和反应动力学信息之外,显微镜中的图像的同时空间和时间分辨率可显着改善图像对比度,探针识别和分化,减少背景(光散射和固有发光),并提供额外的参数数字图像分析。时间分辨率使得可以在用不同的寿命中恢复隐藏的图像中的图像中的结构。给出了这些程序的示例,并讨论了数据采集和分析所需的仪器。该技术采用锁相扰动的调制和发光图像的调制与光学测量图像(图森,Ariz。)系列200高分辨率慢速扫描科学CCD相机之间的锁相和发光图像之间的锁相协调。使用正常的荧光显微镜。

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