Chen Jingjing, Yu Zulin, Unruh Jay R, Slaughter Brian D, Jaspersen Sue L
Stowers Institute for Medical Research, Kansas City, MO 64110, USA.
Department of Molecular and Integrative Physiology, University of Kansas Medical Center, Kansas City, KS 66160, USA.
Bio Protoc. 2020 Feb 20;10(4):e3524. doi: 10.21769/BioProtoc.3524.
Numerous experimental approaches exist to study interactions between two subunits of a large macromolecular complex. However, most methods do not provide spatial and temporal information about binding, which are critical for dissecting the mechanism of assembly of nanosized complexes . While recent advances in super-resolution microscopy techniques have provided insights into biological structures beyond the diffraction limit, most require extensive expertise and/or special sample preparation, and it is a challenge to extend beyond binary, two color experiments. Using HyVolution, a super-resolution technique that combines confocal microscopy at sub-airy unit pinhole sizes with computational deconvolution, we achieved 140 nm resolution in both live and fixed samples with three colors, including two fluorescent proteins (mTurquoise2 and GFP) with significant spectral overlap that were distinguished by means of shifting the excitation wavelength away from common wavelengths. By combining HyVolution super-resolution fluorescence microscopy with bimolecular fluorescence complementation (SRM-BiFC), we describe a new assay capable of visualizing protein-protein interactions at sub-diffraction resolution. This method was used to improve our understanding of the ordered assembly of the spindle pole body (SPB), a ~1 giga-Dalton heteromeric protein complex formed from 18 structural components present in multiple copies. We propose that SRM-BiFC is a powerful tool for examination of direct interactions between protein complex subunits at sub-diffraction resolution in live cells.
存在多种实验方法来研究大型大分子复合物两个亚基之间的相互作用。然而,大多数方法无法提供关于结合的空间和时间信息,而这些信息对于剖析纳米级复合物的组装机制至关重要。虽然超分辨率显微镜技术的最新进展使我们能够洞察超越衍射极限的生物结构,但大多数方法需要广泛的专业知识和/或特殊的样品制备,并且扩展到二元、双色实验之外是一项挑战。使用HyVolution(一种将亚艾里单位针孔尺寸的共聚焦显微镜与计算去卷积相结合的超分辨率技术),我们在活细胞和固定细胞样品中实现了三色140 nm分辨率,包括两种荧光蛋白(mTurquoise2和GFP),它们具有显著的光谱重叠,通过将激发波长从共同波长处移开来区分。通过将HyVolution超分辨率荧光显微镜与双分子荧光互补(SRM-BiFC)相结合,我们描述了一种能够在亚衍射分辨率下可视化蛋白质-蛋白质相互作用的新方法。该方法用于增进我们对纺锤体极体(SPB)有序组装的理解,SPB是一种由18种多拷贝存在的结构成分组成的约1千兆道尔顿的异源蛋白复合物。我们认为SRM-BiFC是在活细胞中以亚衍射分辨率检测蛋白质复合物亚基之间直接相互作用的有力工具。