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Superresolution imaging reveals structural features of EB1 in microtubule plus-end tracking

机译:超分辨率成像在微管末端追踪中揭示了EB1的结构特征

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Visualization of specific molecules and their interactions in real time and space is essential to delineate how cellular dynamics and the signaling circuit are orchestrated. Spatial regulation of conformational dynamics and structural plasticity of protein interactions is required to rewire signaling circuitry in response to extracellular cues. We introduce a method for optically imaging intracellular protein interactions at nanometer spatial resolution in live cells, using photoactivatable complementary fluorescent (PACF) proteins. Subsets of complementary fluorescent protein molecules were activated, localized, and then bleached; this was followed by the assembly of superresolution images from aggregate position of sum interactive molecules. Using PACF, we obtained precise localization of dynamic microtubule plus-end hub protein EB1 dimers and their distinct distributions at the leading edges and in the cell bodies of migrating cells. We further delineated the structure–function relationship of EB1 by generating EB1-PACF dimers (EB1 wt :EB1 wt , EB1 wt :EB1 mt , and EB1 mt :EB1 mt ) and imaging their precise localizations in culture cells. Surprisingly, our analyses revealed critical role of a previously uncharacterized EB1 linker region in tracking microtubule plus ends in live cells. Thus PACF provides a unique approach to delineating spatial dynamics of homo- or heterodimerized proteins at the nanometer scale and establishes a platform to report the precise regulation of protein interactions in space and time in live cells.
机译:特定分子及其在实时和空间中相互作用的可视化对于描述如何协调细胞动力学和信号传导电路至关重要。需要构象动力学的空间调节和蛋白质相互作用的结构可塑性,以响应于细胞外信号而重新连接信号传导电路。我们介绍了一种使用光活化互补荧光(PACF)蛋白质在活细胞中以纳米空间分辨率光学成像细胞内蛋白质相互作用的方法。互补荧光蛋白分子的亚集被激活,定位并随后被漂白;然后是根据总和相互作用分子的聚集位置组装超分辨率图像。使用PACF,我们获得了动态微管正端轮毂蛋白EB1二聚体的精确定位及其在迁移细胞的前缘和细胞体中的独特分布。我们通过生成EB1-PACF二聚体(EB1 wt :EB1 wt ,EB1 wt :EB1 mt 和EB1 mt :EB1 mt ),并对其在培养细胞中的精确定位成像。出人意料的是,我们的分析揭示了先前未表征的EB1接头区域在追踪活细胞中微管和末端中的关键作用。因此,PACF提供了一种独特的方法来描述纳米级的同二聚体或异二聚体蛋白的空间动力学,并建立了一个平台来报告活细胞中空间和时间中蛋白质相互作用的精确调控。

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