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基于动态 FRET-FLIM 的信号转导通路筛选。

Dynamic FRET-FLIM based screening of signal transduction pathways.

机构信息

Cell Biophysics Group, Department of Cell Biology, The Netherlands Cancer Institute, Amsterdam, The Netherlands.

Swammerdam Institute for Life Sciences, University of Amsterdam, Amsterdam, The Netherlands.

出版信息

Sci Rep. 2021 Oct 20;11(1):20711. doi: 10.1038/s41598-021-00098-9.

Abstract

Fluorescence Lifetime Imaging (FLIM) is an intrinsically quantitative method to screen for protein-protein interactions and is frequently used to record the outcome of signal transduction events. With new highly sensitive and photon efficient FLIM instrumentation, the technique also becomes attractive to screen, with high temporal resolution, for fast changes in Förster Resonance Energy Transfer (FRET), such as those occurring upon activation of cell signaling. The second messenger cyclic adenosine monophosphate (cAMP) is rapidly formed following activation of certain cell surface receptors. cAMP is subsequently degraded by a set of phosphodiesterases (PDEs) which display cell-type specific expression and may also affect baseline levels of the messenger. To study which specific PDEs contribute most to cAMP regulation, we knocked down individual PDEs and recorded breakdown rates of cAMP levels following transient stimulation in HeLa cells stably expressing the FRET/FLIM sensor, Epac-S. Many hundreds of cells were recorded at 5 s intervals for each condition. FLIM time traces were calculated for every cell, and decay kinetics were obtained. cAMP clearance was significantly slower when PDE3A and, to a lesser amount, PDE10A were knocked down, identifying these isoforms as dominant in HeLa cells. However, taking advantage of the quantitative FLIM data, we found that knockdown of individual PDEs has a very limited effect on baseline cAMP levels. By combining photon-efficient FLIM instrumentation with optimized sensors, systematic gene knockdown and an automated open-source analysis pipeline, our study demonstrates that dynamic screening of transient cell signals has become feasible. The quantitative platform described here provides detailed kinetic analysis of cellular signals in individual cells with unprecedented throughput.

摘要

荧光寿命成像(FLIM)是一种用于筛选蛋白-蛋白相互作用的固有定量方法,常用于记录信号转导事件的结果。随着新型高灵敏度和高光子效率的 FLIM 仪器的出现,该技术也变得具有吸引力,可以在高时间分辨率下筛选快速变化的Förster 共振能量转移(FRET),例如在细胞信号激活时发生的变化。第二信使环腺苷酸(cAMP)在激活某些细胞表面受体后迅速形成。cAMP 随后被一组磷酸二酯酶(PDEs)降解,这些酶显示出细胞类型特异性表达,也可能影响信使的基线水平。为了研究哪些特定的 PDE 对 cAMP 调节贡献最大,我们敲低了单个 PDE,并在稳定表达 FRET/FLIM 传感器 Epac-S 的 HeLa 细胞中记录短暂刺激后 cAMP 水平的降解率。对于每种条件,记录了数百个细胞在 5 s 间隔的时间轨迹。为每个细胞计算了 FLIM 时间轨迹,并获得了衰减动力学。当敲低 PDE3A 和(在较小程度上)PDE10A 时,cAMP 清除明显变慢,这表明这些同工型在 HeLa 细胞中占主导地位。然而,利用定量 FLIM 数据,我们发现单个 PDE 的敲低对基线 cAMP 水平的影响非常有限。通过将高效的 FLIM 仪器与优化的传感器、系统的基因敲低和自动化的开源分析管道相结合,我们的研究表明,瞬时细胞信号的动态筛选已经成为可能。本文所述的定量平台提供了单个细胞中细胞信号的详细动力学分析,具有前所未有的通量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af61/8528867/d4cd84ef3720/41598_2021_98_Fig1_HTML.jpg

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