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Single Cell FRET Analysis for the Identification of Optimal FRET-Pairs in Bacillus subtilis Using a Prototype MEM-FLIM System

机译:使用原型MEM-FLIM系统鉴定枯草芽孢杆菌中最佳FRET对的单细胞FRET分析

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摘要

Protein-protein interactions can be studied in vitro, e.g. with bacterial or yeast two-hybrid systems or surface plasmon resonance. In contrast to in vitro techniques, in vivo studies of protein-protein interactions allow examination of spatial and temporal behavior of such interactions in their native environment. One approach to study protein-protein interactions in vivo is via Förster Resonance Energy Transfer (FRET). Here, FRET efficiency of selected FRET-pairs was studied at the single cell level using sensitized emission and Frequency Domain-Fluorescence Lifetime Imaging Microscopy (FD-FLIM). For FRET-FLIM, a prototype Modulated Electron-Multiplied FLIM system was used, which is, to the best of our knowledge, the first account of Frequency Domain FLIM to analyze FRET in single bacterial cells. To perform FRET-FLIM, we first determined and benchmarked the best fluorescent protein-pair for FRET in Bacillus subtilis using a novel BglBrick-compatible integration vector. We show that GFP-tagRFP is an excellent donor-acceptor pair for B. subtilis in vivo FRET studies. As a proof of concept, selected donor and acceptor fluorescent proteins were fused using a linker that contained a tobacco etch virus (TEV)-protease recognition sequence. Induction of TEV-protease results in loss of FRET efficiency and increase in fluorescence lifetime. The loss of FRET efficiency after TEV induction can be followed in time in single cells via time-lapse microscopy. This work will facilitate future studies of in vivo dynamics of protein complexes in single B. subtilis cells.
机译:蛋白质-蛋白质相互作用可以在体外进行研究,例如与细菌或酵母的双杂交系统或表面等离子体共振。与体外技术相反,蛋白质-蛋白质相互作用的体内研究允许检查此类相互作用在其天然环境中的时空行为。研究体内蛋白质相互作用的一种方法是通过Förster共振能量转移(FRET)。在这里,使用敏化发射和频域荧光寿命成像显微镜(FD-FLIM)在单个细胞水平上研究了所选FRET对的FRET效率。对于FRET-FLIM,使用了原型调制电子倍增FLIM系统,据我们所知,它是频域FLIM的第一个帐户,用于分析单个细菌细胞中的FRET。为了进行FRET-FLIM,我们首先使用新型BglBrick兼容整合载体确定了枯草芽孢杆菌中FRET的最佳荧光蛋白对并对其进行了基准测试。我们表明,GFP-tagRFP是枯草芽孢杆菌体内FRET研究的优秀供体-受体对。作为概念的证明,使用包含烟草蚀刻病毒(TEV)-蛋白酶识别序列的接头将选定的供体和受体荧光蛋白融合。 TEV蛋白酶的诱导导致FRET效率的损失和荧光寿命的延长。 TEV诱导后FRET效率的损失可通过延时显微镜在单个细胞中及时追踪。这项工作将促进单枯草芽孢杆菌细胞中蛋白质复合物的体内动力学的未来研究。

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