Elgass Kirstin, Caesar Katharina, Schleifenbaum Frank, Stierhof York-Dieter, Meixner Alfred J, Harter Klaus
Institute for Physical and Theoretical Chemistry, University of Tübingen, Tübingen, Germany.
PLoS One. 2009 May 27;4(5):e5716. doi: 10.1371/journal.pone.0005716.
Optical and spectroscopic technologies working at subcellular resolution with quantitative output are required for a deeper understanding of molecular processes and mechanisms in living cells. Such technologies are prerequisite for the realisation of predictive biology at cellular and subcellular level. However, although established in the physical sciences, these techniques are rarely applied to cell biology in the plant sciences.
Here, we present a combined application of one-chromophore fluorescence lifetime microscopy and wavelength-selective fluorescence microscopy to analyse the function of a GFP fusion of the Brassinosteroid Insensitive 1 Receptor (BRI1-GFP) with high spatial and temporal resolution in living Arabidopsis cells in their tissue environment. We show a rapid, brassinolide-induced cell wall expansion and a fast BR-regulated change in the BRI1-GFP fluorescence lifetime in the plasmamembrane in vivo. Both cell wall expansion and changes in fluorescence lifetime reflect early BR-induced and BRI1-dependent physiological or signalling processes. Our experiments also show the potential of one-chromophore fluorescence lifetime microscopy for the in vivo monitoring of the biochemical and biophysical subcellular environment using GFP fusion proteins as probes.
One-chromophore fluorescence lifetime microscopy, combined with wavelength-specific fluorescence microscopy, opens up new frontiers for in vivo dynamic and quantitative analysis of cellular processes at high resolution which are not addressable by pure imaging technologies or transmission electron microscopy.
为了更深入地了解活细胞中的分子过程和机制,需要具有定量输出且能在亚细胞分辨率下工作的光学和光谱技术。此类技术是在细胞和亚细胞水平实现预测生物学的先决条件。然而,尽管这些技术在物理科学中已确立,但在植物科学的细胞生物学中却很少应用。
在此,我们展示了单发色团荧光寿命显微镜和波长选择性荧光显微镜的联合应用,用于在其组织环境中对活体拟南芥细胞中油菜素内酯不敏感1受体(BRI1-GFP)的GFP融合蛋白功能进行高时空分辨率分析。我们在体内显示了油菜素内酯诱导的快速细胞壁扩张以及质膜中BRI1-GFP荧光寿命的快速BR调节变化。细胞壁扩张和荧光寿命变化均反映了早期BR诱导的和BRI1依赖性的生理或信号传导过程。我们的实验还展示了单发色团荧光寿命显微镜利用GFP融合蛋白作为探针在体内监测生化和生物物理亚细胞环境的潜力。
单发色团荧光寿命显微镜与波长特异性荧光显微镜相结合,为高分辨率下细胞过程的体内动态和定量分析开辟了新的前沿领域,这是纯成像技术或透射电子显微镜无法实现的。