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Measuring Fast Dynamics in Solutions and Cells with a Laser Scanning Microscope

机译:用激光扫描显微镜测量溶液和细胞中的快速动力学

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摘要

Single-point fluorescence correlation spectroscopy (FCS) allows measurements of fast diffusion and dynamic processes in the microsecond-to-millisecond time range. For measurements on living cells, image correlation spectroscopy (ICS) and temporal ICS extend the FCS approach to diffusion times as long as seconds to minutes and simultaneously provide spatially resolved dynamic information. However, ICS is limited to very slow dynamics due to the frame acquisition rate. Here we develop novel extensions to ICS that probe spatial correlations in previously inaccessible temporal windows. We show that using standard laser confocal imaging techniques (raster-scan mode) not only can we reach the temporal scales of single-point FCS, but also have the advantages of ICS in providing spatial information. This novel method, called raster image correlation spectroscopy (RICS), rapidly measures during the scan many focal points within the cell providing the same concentration and dynamic information of FCS as well as information on the spatial correlation between points along the scanning path. Longer time dynamics are recovered from the information in successive lines and frames. We exploit the hidden time structure of the scan method in which adjacent pixels are a few microseconds apart thereby accurately measuring dynamic processes such as molecular diffusion in the microseconds-to-seconds timescale. In conjunction with simulated data, we show that a wide range of diffusion coefficients and concentrations can be measured by RICS. We used RICS to determine for the first time spatially resolved diffusions of paxillin-EGFP stably expressed in CHOK1 cells. This new type of data analysis has a broad application in biology and it provides a powerful tool for measuring fast as well as slower dynamic processes in cellular systems using any standard laser confocal microscope.
机译:单点荧光相关光谱(FCS)可以在微秒到毫秒的时间范围内测量快速扩散和动态过程。对于活细胞的测量,图像相关光谱(ICS)和时间ICS扩展了FCS方法的扩散时间,从数秒到数分钟不等,并同时提供了空间分辨的动态信息。但是,由于帧采集速率的原因,ICS被限制在非常慢的动态范围内。在这里,我们开发了ICS的新颖扩展,可以探测以前无法访问的时间窗口中的空间相关性。我们表明,使用标准的激光共聚焦成像技术(光栅扫描模式)不仅可以达到单点FCS的时间尺度,而且在提供空间信息方面具有ICS的优势。这种称为光栅图像相关光谱法(RICS)的新方法在扫描过程中快速测量了单元内的许多焦点,这些焦点提供了相同的FCS浓度和动态信息以及沿扫描路径的点之间的空间相关性信息。从连续的行和帧中的信息中恢复更长的时间动态。我们利用扫描方法的隐藏时间结构,其中相邻像素之间相隔几微秒,从而在微秒到几秒的时间范围内精确地测量动态过程,例如分子扩散。结合模拟数据,我们显示出可以通过RICS测量广泛的扩散系数和浓度。我们使用RICS来首次确定在CHOK1细胞中稳定表达的Paxillin-EGFP的空间分辨扩散。这种新型的数据分析在生物学中有着广泛的应用,它为使用任何标准激光共聚焦显微镜在细胞系统中测量快速和慢速动态过程提供了强大的工具。

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