Universität Potsdam, Institute of Biochemistry and Biology, Potsdam, Germany.
Elife. 2021 Sep 8;10:e69687. doi: 10.7554/eLife.69687.
Signaling pathways in biological systems rely on specific interactions between multiple biomolecules. Fluorescence fluctuation spectroscopy provides a powerful toolbox to quantify such interactions directly in living cells. Cross-correlation analysis of spectrally separated fluctuations provides information about intermolecular interactions but is usually limited to two fluorophore species. Here, we present scanning fluorescence spectral correlation spectroscopy (SFSCS), a versatile approach that can be implemented on commercial confocal microscopes, allowing the investigation of interactions between multiple protein species at the plasma membrane. We demonstrate that SFSCS enables cross-talk-free cross-correlation, diffusion, and oligomerization analysis of up to four protein species labeled with strongly overlapping fluorophores. As an example, we investigate the interactions of influenza A virus (IAV) matrix protein 2 with two cellular host factors simultaneously. We furthermore apply raster spectral image correlation spectroscopy for the simultaneous analysis of up to four species and determine the stoichiometry of ternary IAV polymerase complexes in the cell nucleus.
生物系统中的信号通路依赖于多种生物分子之间的特异性相互作用。荧光波动光谱学提供了一个强大的工具包,可以直接在活细胞中定量这些相互作用。光谱分离波动的互相关分析提供了关于分子间相互作用的信息,但通常仅限于两种荧光团。在这里,我们提出了扫描荧光光谱相关光谱学(SFSCS),这是一种多功能的方法,可以在商业共聚焦显微镜上实现,允许在质膜上研究多种蛋白质之间的相互作用。我们证明了 SFSCS 可以实现无串扰的互相关、扩散和寡聚化分析,用于标记有强烈重叠荧光团的多达四种蛋白质。作为一个例子,我们同时研究了流感病毒(IAV)基质蛋白 2 与两种细胞宿主因子的相互作用。此外,我们还应用光栅光谱图像相关光谱学来同时分析多达四种物质,并确定细胞核中三进制 IAV 聚合酶复合物的化学计量。