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通过双分子荧光互补技术在烟草原生质体和叶片中可视化蛋白质-蛋白质相互作用。

Protein-protein interactions visualized by bimolecular fluorescence complementation in tobacco protoplasts and leaves.

作者信息

Schweiger Regina, Schwenkert Serena

机构信息

Department Biologie I, Botanik, Ludwig-Maximilians-Universität, München.

Department Biologie I, Botanik, Ludwig-Maximilians-Universität, München;

出版信息

J Vis Exp. 2014 Mar 9(85):51327. doi: 10.3791/51327.

DOI:10.3791/51327
PMID:24637460
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4144666/
Abstract

Many proteins interact transiently with other proteins or are integrated into multi-protein complexes to perform their biological function. Bimolecular fluorescence complementation (BiFC) is an in vivo method to monitor such interactions in plant cells. In the presented protocol the investigated candidate proteins are fused to complementary halves of fluorescent proteins and the respective constructs are introduced into plant cells via agrobacterium-mediated transformation. Subsequently, the proteins are transiently expressed in tobacco leaves and the restored fluorescent signals can be detected with a confocal laser scanning microscope in the intact cells. This allows not only visualization of the interaction itself, but also the subcellular localization of the protein complexes can be determined. For this purpose, marker genes containing a fluorescent tag can be coexpressed along with the BiFC constructs, thus visualizing cellular structures such as the endoplasmic reticulum, mitochondria, the Golgi apparatus or the plasma membrane. The fluorescent signal can be monitored either directly in epidermal leaf cells or in single protoplasts, which can be easily isolated from the transformed tobacco leaves. BiFC is ideally suited to study protein-protein interactions in their natural surroundings within the living cell. However, it has to be considered that the expression has to be driven by strong promoters and that the interaction partners are modified due to fusion of the relatively large fluorescence tags, which might interfere with the interaction mechanism. Nevertheless, BiFC is an excellent complementary approach to other commonly applied methods investigating protein-protein interactions, such as coimmunoprecipitation, in vitro pull-down assays or yeast-two-hybrid experiments.

摘要

许多蛋白质与其他蛋白质短暂相互作用,或整合到多蛋白复合物中以执行其生物学功能。双分子荧光互补(BiFC)是一种在植物细胞中监测此类相互作用的体内方法。在本实验方案中,将研究的候选蛋白质与荧光蛋白的互补片段融合,并通过农杆菌介导的转化将各自的构建体导入植物细胞。随后,这些蛋白质在烟草叶片中瞬时表达,并且可以在完整细胞中用共聚焦激光扫描显微镜检测恢复的荧光信号。这不仅可以可视化相互作用本身,还可以确定蛋白质复合物的亚细胞定位。为此,可以将含有荧光标签的标记基因与BiFC构建体共表达,从而可视化内质网、线粒体、高尔基体或质膜等细胞结构。荧光信号可以直接在表皮叶细胞或单个原生质体中监测,原生质体可以很容易地从转化的烟草叶片中分离出来。BiFC非常适合在活细胞的自然环境中研究蛋白质-蛋白质相互作用。然而,必须考虑到表达必须由强启动子驱动,并且由于相对较大的荧光标签的融合,相互作用伙伴会被修饰,这可能会干扰相互作用机制。尽管如此,BiFC是一种很好的补充方法,可用于研究蛋白质-蛋白质相互作用的其他常用方法,如免疫共沉淀、体外下拉分析或酵母双杂交实验。