Advances in time-resolved fluorescence microscopy: Simultaneous FRAP, FLIM and tr-FAIM to image rotational and translation diffusion in living cells

K. Suhling, P. Chung, J. Levitt
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Abstract

Fluorescence imaging techniques are powerful tools in the biological and biomedical sciences, because they are minimally invasive and can be applied to live cells and tissues. It is advantageous to exploit the many properties of fluorescence in imaging experiments.[1–3] We demonstrate a novel experimental arrangement for measurements of intracellular dynamics by simultaneous acquisition of fluorescence recovery curves (FRAP), fluorescence lifetime imaging (FLIM) and fluorescence anisotropy imaging (FAIM). We have used this set-up to obtain the translational and rotational diffusion properties of green fluorescent protein (GFP)-labelled proteins in living cells. This method allows extraction of fluorescence lifetimes, rotational correlation times and diffusion characteristics simultaneously and thus avoids excessive photobleaching or artefacts due to cell movement. It can also measure phenomena that each method on its own cannot measure, e.g. diffusing homo-dimers.
时间分辨荧光显微镜的进展:FRAP, FLIM和tr- fam同时成像活细胞的旋转和平移扩散
荧光成像技术是生物和生物医学科学的有力工具,因为它们是微创的,可以应用于活细胞和组织。这有利于在成像实验中充分利用荧光的多种特性。[1-3]我们展示了一种新的实验安排,通过同时获取荧光恢复曲线(FRAP)、荧光寿命成像(FLIM)和荧光各向异性成像(fam)来测量细胞内动力学。我们使用这种设置来获得绿色荧光蛋白(GFP)标记蛋白在活细胞中的翻译和旋转扩散特性。该方法可以同时提取荧光寿命、旋转相关时间和扩散特性,从而避免因细胞运动而产生过度的光漂白或伪影。它还可以测量每种方法本身无法测量的现象,例如扩散的同型二聚体。
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