Fricke Franziska, Beaudouin Joel, Malkusch Sebastian, Eils Roland, Heilemann Mike
Institute of Physical and Theoretical Chemistry, Goethe-University Frankfurt, Max-von-Laue-Str. 7, Frankfurt am Main, 60438, Germany.
Department for Bioinformatics and Functional Genomics, Bioquant and Institute of Pharmacy and Molecular Biotechnology, Heidelberg University, Heidelberg, Germany.
Methods Mol Biol. 2017;1663:115-126. doi: 10.1007/978-1-4939-7265-4_10.
Photoswitchable or photoactivatable fluorophores are the key in single-molecule localization microscopy. Next to providing fluorescence images with subdiffraction spatial resolution, additional information is available from observing single fluorophores over time. This includes the characteristic photophysical phenomenon of "blinking" that is exhibited by single fluorescent proteins or fluorophores and follows well-defined kinetic laws. Analyzing the kinetics of "blinking" allows determining the number of fluorophores in a multi-molecular complex. As such, quantitative information at the molecular level can be extracted, representing a tremendously useful extension of single-molecule super-resolution microscopy. This concept is in particular useful to study homo- and heterooligomeric signaling protein complexes in the plasma membrane of an intact cell with molecular resolution. Here, we provide an experimental framework for deciphering the stoichiometry of membrane proteins on the basis of SMLM and photoswitching statistics.
可光开关或可光激活的荧光团是单分子定位显微镜的关键。除了提供具有亚衍射空间分辨率的荧光图像外,通过长时间观察单个荧光团还可以获得额外信息。这包括单个荧光蛋白或荧光团表现出的“闪烁”这一特征光物理现象,且该现象遵循明确的动力学规律。分析“闪烁”的动力学可以确定多分子复合物中荧光团的数量。因此,可以提取分子水平的定量信息,这是单分子超分辨率显微镜极具价值的扩展。这个概念对于以分子分辨率研究完整细胞质膜中的同型和异型寡聚信号蛋白复合物特别有用。在这里,我们提供了一个基于单分子定位显微镜(SMLM)和光开关统计来解读膜蛋白化学计量的实验框架。