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k-Space Image Correlation Spectroscopy: A Method for Accurate Transport Measurements Independent of Fluorophore Photophysics

机译:k空间图像相关光谱:一种独立于荧光团光物理的精确传输测量方法

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摘要

We present the theory and application of reciprocal space image correlation spectroscopy (kICS). This technique measures the number density, diffusion coefficient, and velocity of fluorescently labeled macromolecules in a cell membrane imaged on a confocal, two-photon, or total internal reflection fluorescence microscope. In contrast to r-space correlation techniques, we show kICS can recover accurate dynamics even in the presence of complex fluorophore photobleaching and/or “blinking”. Furthermore, these quantities can be calculated without nonlinear curve fitting, or any knowledge of the beam radius of the exciting laser. The number densities calculated by kICS are less sensitive to spatial inhomogeneity of the fluorophore distribution than densities measured using image correlation spectroscopy. We use simulations as a proof-of-principle to show that number densities and transport coefficients can be extracted using this technique. We present calibration measurements with fluorescent microspheres imaged on a confocal microscope, which recover Stokes-Einstein diffusion coefficients, and flow velocities that agree with single particle tracking measurements. We also show the application of kICS to measurements of the transport dynamics of α5-integrin/enhanced green fluorescent protein constructs in a transfected CHO cell imaged on a total internal reflection fluorescence microscope using charge-coupled device area detection.
机译:我们介绍了相互空间图像相关光谱(kICS)的理论和应用。该技术测量在共聚焦,两光子或全内反射荧光显微镜上成像的细胞膜中荧光标记的大分子的数量密度,扩散系数和速度。与r空间相关技术相比,我们显示kICS即使在存在复杂的荧光团光漂白和/或“闪烁”的情况下也可以恢复准确的动力学。此外,可以在不进行非线性曲线拟合或不知道激发激光器的光束半径的情况下计算这些量。与使用图像相关光谱法测得的密度相比,通过kICS计算的数密度对荧光团分布的空间不均匀性较不敏感。我们使用模拟作为原理证明,以显示可以使用此技术提取数量密度和传输系数。我们用共聚焦显微镜成像的荧光微球呈现校准测量结果,该荧光微球可恢复斯托克斯-爱因斯坦扩散系数和与单颗粒跟踪测量结果一致的流速。我们还显示了kICS在使用电荷耦合器件面积检测在全内反射荧光显微镜上成像的转染CHO细胞中测量α5-整合素/增强型绿色荧光蛋白构建体的运输动力学中的应用。

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