1 Photonics Group, Department of Physics, Imperial College London, London, UK.
2 Francis Crick Institute, London, UK.
SLAS Technol. 2019 Jun;24(3):308-320. doi: 10.1177/2472630318819240. Epub 2019 Jan 10.
We describe an open-source automated multiwell plate fluorescence lifetime imaging (FLIM) methodology to read out Förster resonance energy transfer (FRET) between fluorescent proteins (FPs) labeling endogenous kinetochore proteins (KPs) in live budding yeast cells. The low copy number of many KPs and their small spatial extent present significant challenges for the quantification of donor fluorescence lifetime in the presence of significant cellular autofluorescence and photobleaching. Automated FLIM data acquisition was controlled by µManager and incorporated wide-field time-gated imaging with optical sectioning to reduce background fluorescence. For data analysis, we used custom MATLAB-based software tools to perform kinetochore foci segmentation and local cellular background subtraction and fitted the fluorescence lifetime data using the open-source FLIMfit software. We validated the methodology using endogenous KPs labeled with mTurquoise2 FP and/or yellow FP and measured the donor fluorescence lifetimes for foci comprising 32 kinetochores with KP copy numbers as low as ~2 per kinetochore under an average labeling efficiency of 50%. We observed changes of median donor lifetime ≥250 ps for KPs known to form dimers. Thus, this FLIM high-content analysis platform enables the screening of relatively low-copy-number endogenous protein-protein interactions at spatially confined macromolecular complexes.
我们描述了一种开源的自动化微孔板荧光寿命成像(FLIM)方法,用于读取活 budding 酵母细胞中标记着内源性着丝粒蛋白(KPs)的荧光蛋白(FPs)之间的Förster 共振能量转移(FRET)。许多 KPs 的拷贝数低,其空间范围小,这给在存在大量细胞自发荧光和荧光漂白的情况下定量供体荧光寿命带来了重大挑战。自动化 FLIM 数据采集由 µManager 控制,并结合宽场时间门控成像和光学切片来减少背景荧光。对于数据分析,我们使用基于 MATLAB 的自定义软件工具来执行着丝粒焦点分割和局部细胞背景减除,并使用开源的 FLIMfit 软件对荧光寿命数据进行拟合。我们使用标记有 mTurquoise2 FP 和/或黄色 FP 的内源性 KPs 验证了该方法,并测量了在平均标记效率为 50%的情况下,拷贝数低至每个着丝粒约 2 的 32 个着丝粒焦点的供体荧光寿命。我们观察到已知形成二聚体的 KPs 的中位供体寿命变化≥250 ps。因此,这种 FLIM 高内涵分析平台能够筛选空间受限的大分子复合物中相对低拷贝数的内源性蛋白-蛋白相互作用。