Laboratoire Dynamique de la Compartimentation Cellulaire, CNRS, Institut des Sciences du Végétal, Centre de recherche de Gif (FRC3115), 91198, Gif-sur-Yvette Cedex, France.
Plant J. 2010 Aug;63(4):696-711. doi: 10.1111/j.1365-313X.2010.04272.x.
Photoactivatable and photoconvertible fluorescent proteins capable of pronounced light-induced spectral changes are a powerful addition to the fluorescent protein toolbox of the cell biologist. They permit specific tracking of one subcellular structure (organelle or cell subdomain) within a differentially labelled population. They also enable pulse-chase analysis of protein traffic. The Kaede gene codes for a tetrameric protein found in the stony coral Trachyphyllia geoffroyi, which emits green fluorescence that irreversibly shifts to red following radiation with UV or violet light. We report here the use of Kaede to explore the plant secretory pathway. Kaede versions of the Golgi marker sialyl-transferase (ST-Kaede) and of the vacuolar pathway marker cardosin A (cardA-Kaede) were engineered. Several optical devices enabling photoconversion and observation of Kaede using these two constructs were assessed to optimize Kaede-based imaging protocols. Photoconverted ST-Kaede red-labelled organelles can be followed within neighbouring populations of non-converted green Golgi stacks, by their gradual development of orange/yellow coloration from de novo synthesis of Golgi proteins (green). Results highlight some aspects on the dynamics of the plant Golgi. For plant bio-imaging, the photoconvertible Kaede offers a powerful tool to track the dynamic behaviour of designated subpopulations of Golgi within living cells, while visualizing the de novo formation of proteins and structures, such as a Golgi stack.
光激活和光转化的荧光蛋白能够显著改变光诱导的光谱变化,是细胞生物学家荧光蛋白工具包的有力补充。它们允许在一个不同标记的群体中特异性跟踪一个亚细胞结构(细胞器或细胞亚区室)。它们还可以进行蛋白质运输的脉冲追踪分析。Kaede 基因编码一种四聚体蛋白,存在于石珊瑚 Trachyphyllia geoffroyi 中,这种蛋白发出的绿色荧光在受到紫外线或紫光辐射后会不可逆地转变为红色。我们在这里报告了 Kaede 用于探索植物分泌途径的用途。设计了 Kaede 版本的高尔基体标记唾液酸转移酶(ST-Kaede)和液泡途径标记 cardosin A(cardA-Kaede)。评估了几种光学设备,以优化基于 Kaede 的成像方案,这些设备可用于光转化和观察这两种构建体的 Kaede。通过从头合成高尔基体蛋白(绿色),可以观察到光转化的 ST-Kaede 红色标记细胞器在非转化的绿色高尔基体堆栈相邻群体中的逐渐橙色/黄色着色,从而跟踪其动态。结果突出了植物高尔基体动态的某些方面。对于植物生物成像,光转化的 Kaede 提供了一种强大的工具,可以在活细胞中跟踪指定的高尔基体亚群的动态行为,同时可视化蛋白质和结构(如高尔基体堆栈)的从头形成。