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Rap1 and Canoe/afadin are essential for establishment of apical–basal polarity in the Drosophila embryo

机译:Rap1和独木舟/阿法丁对于在果蝇胚胎中建立顶基极性至关重要

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The establishment and maintenance of apical–basal cell polarity is critical for assembling epithelia and maintaining organ architecture. Drosophila embryos provide a superb model. In the current view, apically positioned Bazooka/Par3 is the initial polarity cue as cells form during cellularization. Bazooka then helps to position both adherens junctions and atypical protein kinase C (aPKC). Although a polarized cytoskeleton is critical for Bazooka positioning, proteins mediating this remained unknown. We found that the small GTPase Rap1 and the actin-junctional linker Canoe/afadin are essential for polarity establishment, as both adherens junctions and Bazooka are mispositioned in their absence. Rap1 and Canoe do not simply organize the cytoskeleton, as actin and microtubules become properly polarized in their absence. Canoe can recruit Bazooka when ectopically expressed, but they do not obligatorily colocalize. Rap1 and Canoe play continuing roles in Bazooka localization during gastrulation, but other polarity cues partially restore apical Bazooka in the absence of Rap1 or Canoe. We next tested the current linear model for polarity establishment. Both Bazooka and aPKC regulate Canoe localization despite being "downstream" of Canoe. Further, Rap1, Bazooka, and aPKC, but not Canoe, regulate columnar cell shape. These data reshape our view, suggesting that polarity establishment is regulated by a protein network rather than a linear pathway.
机译:顶基细胞极性的建立和维持对于组装上皮和维持器官结构至关重要。果蝇胚胎提供了极好的模型。在当前视图中,顶端定位的火箭筒/ Par3是细胞在细胞化过程中形成时的初始极性提示。然后,火箭筒有助于定位粘附连接和非典型蛋白激酶C(aPKC)。尽管极化的细胞骨架对于火箭筒的定位至关重要,但介导这种极化的蛋白质仍然未知。我们发现,小的GTPase Rap1和肌动蛋白连接接头Canoe / afadin对于极性建立至关重要,因为粘附连接和火箭筒都在不存在的情况下被错位了。 Rap1和独木舟不能简单地组织细胞骨架,因为肌动蛋白和微管在不存在时会被正确极化。当在异位表达时,独木舟可以募集火箭筒,但它们不必强制共定位。 Rap1和独木舟在胃形成过程中在火箭筒的定位中继续发挥作用,但是在没有Rap1或独木舟的情况下,其他极性提示会部分恢复顶端的火箭筒。接下来,我们测试了用于建立极性的当前线性模型。火箭筒和aPKC都调节着独木舟的位置,尽管它们是独木舟的“下游”。此外,Rap1,Bazooka和aPKC(而不是独木舟)调节柱状细胞的形状。这些数据重塑了我们的观点,表明极性的建立是由蛋白质网络而不是线性途径调控的。

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