光漂白
费斯特共振能量转移
光漂白后的荧光恢复
显微镜
荧光显微镜
荧光
荧光寿命成像显微镜
生命科学中的荧光
荧光各向异性
共焦显微镜
荧光互相关光谱
显微镜
共焦
全内反射荧光显微镜
活体细胞成像
化学
材料科学
光学
荧光光谱法
物理
生物化学
细胞
作者
Hellen Ishikawa‐Ankerhold,Richard Ankerhold,Gregor P. C. Drummen
出处
期刊:Molecules
[MDPI AG]
日期:2012-04-02
卷期号:17 (4): 4047-4132
被引量:427
标识
DOI:10.3390/molecules17044047
摘要
Fluorescence microscopy provides an efficient and unique approach to study fixed and living cells because of its versatility, specificity, and high sensitivity. Fluorescence microscopes can both detect the fluorescence emitted from labeled molecules in biological samples as images or photometric data from which intensities and emission spectra can be deduced. By exploiting the characteristics of fluorescence, various techniques have been developed that enable the visualization and analysis of complex dynamic events in cells, organelles, and sub-organelle components within the biological specimen. The techniques described here are fluorescence recovery after photobleaching (FRAP), the related fluorescence loss in photobleaching (FLIP), fluorescence localization after photobleaching (FLAP), Förster or fluorescence resonance energy transfer (FRET) and the different ways how to measure FRET, such as acceptor bleaching, sensitized emission, polarization anisotropy, and fluorescence lifetime imaging microscopy (FLIM). First, a brief introduction into the mechanisms underlying fluorescence as a physical phenomenon and fluorescence, confocal, and multiphoton microscopy is given. Subsequently, these advanced microscopy techniques are introduced in more detail, with a description of how these techniques are performed, what needs to be considered, and what practical advantages they can bring to cell biological research.
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