Department of Biochemistry, University of Cambridge, 80 Tennis Court Road, Cambridge, CB2 1GA, UK.
Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge, CB2 1EW, UK.
Nat Commun. 2018 Jun 28;9(1):2520. doi: 10.1038/s41467-018-04486-0.
A major challenge in single-molecule imaging is tracking the dynamics of proteins or complexes for long periods of time in the dense environments found in living cells. Here, we introduce the concept of using FRET to enhance the photophysical properties of photo-modulatable (PM) fluorophores commonly used in such studies. By developing novel single-molecule FRET pairs, consisting of a PM donor fluorophore (either mEos3.2 or PA-JF) next to a photostable acceptor dye JF, we demonstrate that FRET competes with normal photobleaching kinetic pathways to increase the photostability of both donor fluorophores. This effect was further enhanced using a triplet-state quencher. Our approach allows us to significantly improve single-molecule tracking of chromatin-binding proteins in live mammalian cells. In addition, it provides a novel way to track the localization and dynamics of protein complexes by labeling one protein with the PM donor and its interaction partner with the acceptor dye.
在单分子成像中,一个主要的挑战是在活细胞中密集的环境中长时间跟踪蛋白质或复合物的动力学。在这里,我们引入了一种使用 FRET 来增强在这些研究中常用的光可调节(PM)荧光染料的光物理性质的概念。通过开发由 PM 供体荧光染料(mEos3.2 或 PA-JF)旁边的光稳定的受体染料 JF 组成的新型单分子 FRET 对,我们证明 FRET 与正常的光漂白动力学途径竞争,以增加两个供体荧光染料的光稳定性。通过使用三重态猝灭剂进一步增强了这种效果。我们的方法允许我们在活的哺乳动物细胞中显著提高染色质结合蛋白的单分子追踪能力。此外,它通过用 PM 供体标记一个蛋白质及其与受体染料的相互作用伙伴来标记蛋白质复合物的定位和动态,提供了一种跟踪蛋白质复合物的新方法。