State Key Laboratory of Membrane Biology, Biodynamic Optical Imaging Center (BIOPIC), School of Life Sciences , Peking University , Beijing 100871 , China.
ACS Chem Biol. 2018 May 18;13(5):1180-1188. doi: 10.1021/acschembio.7b00931. Epub 2018 Jan 11.
As one of the most powerful tools to visualize PPIs in living cells, bimolecular fluorescence complementation (BiFC) has gained great advancement during recent years, including deep tissue imaging with far-red or near-infrared fluorescent proteins or super-resolution imaging with photochromic fluorescent proteins. However, little progress has been made toward simultaneous detection and visualization of multiple PPIs in the same cell, mainly due to the spectral crosstalk. In this report, we developed novel BiFC assays based on large-Stokes-shift fluorescent proteins (LSS-FPs) to detect and visualize multiple PPIs in living cells. With the large excitation/emission spectral separation, LSS-FPs can be imaged together with normal Stokes shift fluorescent proteins to realize multicolor BiFC imaging using a simple illumination scheme. We also further demonstrated BiFC rainbow combining newly developed BiFC assays with previously established mCerulean/mVenus-based BiFC assays to achieve detection and visualization of four PPI pairs in the same cell. Additionally, we prove that with the complete spectral separation of mT-Sapphire and CyOFP1, LSS-FP-based BiFC assays can be readily combined with intensity-based FRET measurement to detect ternary protein complex formation with minimal spectral crosstalk. Thus, our newly developed LSS-FP-based BiFC assays not only expand the fluorescent protein toolbox available for BiFC but also facilitate the detection and visualization of multiple protein complex interactions in living cells.
作为在活细胞中可视化蛋白质-蛋白质相互作用(PPIs)的最强大工具之一,双分子荧光互补(BiFC)在近年来取得了重大进展,包括使用远红或近红外荧光蛋白进行深层组织成像,或使用光致变色荧光蛋白进行超分辨率成像。然而,在同一细胞中同时检测和可视化多个 PPI 方面几乎没有取得进展,主要是由于光谱串扰。在本报告中,我们开发了基于大斯托克斯位移荧光蛋白(LSS-FP)的新型 BiFC 测定法,用于在活细胞中检测和可视化多个 PPI。由于激发/发射光谱的大分离,LSS-FP 可以与正常斯托克斯位移荧光蛋白一起成像,以使用简单的照明方案实现多色 BiFC 成像。我们还进一步展示了 BiFC 彩虹,即将新开发的 BiFC 测定法与先前建立的 mCerulean/mVenus 为基础的 BiFC 测定法相结合,以在同一细胞中检测和可视化四个 PPI 对。此外,我们证明了通过 mT-Sapphire 和 CyOFP1 的完全光谱分离,基于 LSS-FP 的 BiFC 测定法可以与基于强度的 FRET 测量轻松结合,以最小的光谱串扰检测三元蛋白质复合物的形成。因此,我们新开发的基于 LSS-FP 的 BiFC 测定法不仅扩展了可用于 BiFC 的荧光蛋白工具包,而且还促进了活细胞中多个蛋白质复合物相互作用的检测和可视化。