Sipieter François, Cappe Benjamin, Gonzalez Pisfil Mariano, Spriet Corentin, Bodart Jean-François, Cailliau-Maggio Katia, Vandenabeele Peter, Héliot Laurent, Riquet Franck B
Molecular Signaling and Cell Death Unit, Department of Biomedical Molecular Biology, Ghent University, Ghent, Belgium; Molecular Signaling and Cell Death Unit, Inflammation Research Center (IRC), VIB, Ghent, Belgium; Equipe Biophotonique Cellulaire Fonctionnelle, Laboratoire de Physique des Lasers, Atomes et Molécules (PhLAM), CNRS-UMR 8523, Villeneuve d'Ascq, France; Regulation of Signal Division Team, Structural and Functional Glycobiology Unit (UGSF), CNRS-UMR 8576, Lille 1 University, Villeneuve d'Ascq, France; Groupement de Recherche Microscopie Imagerie du Vivant, GDR2588 MIV-CNRS, Villeneuve d'Ascq, France.
Molecular Signaling and Cell Death Unit, Department of Biomedical Molecular Biology, Ghent University, Ghent, Belgium; Molecular Signaling and Cell Death Unit, Inflammation Research Center (IRC), VIB, Ghent, Belgium; Groupement de Recherche Microscopie Imagerie du Vivant, GDR2588 MIV-CNRS, Villeneuve d'Ascq, France.
PLoS One. 2015 Oct 30;10(10):e0140924. doi: 10.1371/journal.pone.0140924. eCollection 2015.
Uncoupling of ERK1/2 phosphorylation from subcellular localization is essential towards the understanding of molecular mechanisms that control ERK1/2-mediated cell-fate decision. ERK1/2 non-catalytic functions and discoveries of new specific anchors responsible of the subcellular compartmentalization of ERK1/2 signaling pathway have been proposed as regulation mechanisms for which dynamic monitoring of ERK1/2 localization is necessary. However, studying the spatiotemporal features of ERK2, for instance, in different cellular processes in living cells and tissues requires a tool that can faithfully report on its subcellular distribution. We developed a novel molecular tool, ERK2-LOC, based on the T2A-mediated coexpression of strictly equimolar levels of eGFP-ERK2 and MEK1, to faithfully visualize ERK2 localization patterns. MEK1 and eGFP-ERK2 were expressed reliably and functionally both in vitro and in single living cells. We then assessed the subcellular distribution and mobility of ERK2-LOC using fluorescence microscopy in non-stimulated conditions and after activation/inhibition of the MAPK/ERK1/2 signaling pathway. Finally, we used our coexpression system in Xenopus laevis embryos during the early stages of development. This is the first report on MEK1/ERK2 T2A-mediated coexpression in living embryos, and we show that there is a strong correlation between the spatiotemporal subcellular distribution of ERK2-LOC and the phosphorylation patterns of ERK1/2. Our approach can be used to study the spatiotemporal localization of ERK2 and its dynamics in a variety of processes in living cells and embryonic tissues.
将细胞外信号调节激酶1/2(ERK1/2)磷酸化与亚细胞定位解偶联,对于理解控制ERK1/2介导的细胞命运决定的分子机制至关重要。ERK1/2的非催化功能以及负责ERK1/2信号通路亚细胞分隔的新特异性锚定物的发现,已被提出作为调节机制,而对ERK1/2定位进行动态监测是必要的。然而,例如在活细胞和组织的不同细胞过程中研究ERK2的时空特征,需要一种能够如实报告其亚细胞分布的工具。我们基于T2A介导的等摩尔水平的绿色荧光蛋白(eGFP)-ERK2和丝裂原活化蛋白激酶激酶1(MEK1)的共表达,开发了一种新型分子工具ERK2-LOC,以如实可视化ERK2的定位模式。MEK1和eGFP-ERK2在体外和单个活细胞中均可靠且功能性地表达。然后,我们在非刺激条件下以及丝裂原活化蛋白激酶/细胞外信号调节激酶1/2(MAPK/ERK1/2)信号通路激活/抑制后,使用荧光显微镜评估了ERK2-LOC的亚细胞分布和迁移率。最后,我们在非洲爪蟾胚胎发育的早期阶段使用了我们的共表达系统。这是关于MEK1/ERK2 T2A介导的在活胚胎中共表达的首次报道,并表明ERK2-LOC的时空亚细胞分布与ERK1/2的磷酸化模式之间存在强相关性。我们的方法可用于研究ERK2在活细胞和胚胎组织的各种过程中的时空定位及其动态变化。