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在果蝇气管系统形态发生过程中,回收型内体的微管依赖性顶端限制维持着黏着连接。

Microtubule-dependent apical restriction of recycling endosomes sustains adherens junctions during morphogenesis of the Drosophila tracheal system.

作者信息

Le Droguen Pierre-Marie, Claret Sandra, Guichet Antoine, Brodu Véronique

机构信息

Institut Jacques Monod, CNRS and University Paris Diderot, 15 Rue H. Brion, Paris 75205, Cedex 13, France.

Institut Jacques Monod, CNRS and University Paris Diderot, 15 Rue H. Brion, Paris 75205, Cedex 13, France

出版信息

Development. 2015 Jan 15;142(2):363-74. doi: 10.1242/dev.113472.

Abstract

Epithelial remodelling is an essential mechanism for organogenesis, during which cells change shape and position while maintaining contact with each other. Adherens junctions (AJs) mediate stable intercellular cohesion but must be actively reorganised to allow morphogenesis. Vesicle trafficking and the microtubule (MT) cytoskeleton contribute to regulating AJs but their interrelationship remains elusive. We carried out a detailed analysis of the role of MTs in cell remodelling during formation of the tracheal system in the Drosophila embryo. Induction of MT depolymerisation specifically in tracheal cells shows that MTs are essential during a specific time frame of tracheal cell elongation while the branch extends. In the absence of MTs, one tracheal cell per branch overelongates, ultimately leading to branch break. Three-dimensional quantifications revealed that MTs are crucial to sustain E-Cadherin (Shotgun) and Par-3 (Bazooka) levels at AJs. Maintaining E-Cadherin/Par-3 levels at the apical domain requires de novo synthesis rather than internalisation and recycling from and to the apical plasma membrane. However, apical targeting of E-Cadherin and Par-3 requires functional recycling endosomes, suggesting an intermediate role for this compartment in targeting de novo synthesized E-Cadherin to the plasma membrane. We demonstrate that apical enrichment of recycling endosomes is dependent on the MT motor Dynein and essential for the function of this vesicular compartment. In addition, we establish that E-Cadherin dynamics and MT requirement differ in remodelling tracheal cells versus planar epithelial cells. Altogether, our results uncover an MT-Dynein-dependent apical restriction of recycling endosomes that controls adhesion by sustaining Par-3 and E-Cadherin levels at AJs during morphogenesis.

摘要

上皮重塑是器官发生的一种基本机制,在此过程中,细胞在保持彼此接触的同时改变形状和位置。黏着连接(AJs)介导稳定的细胞间黏附,但必须积极重组以允许形态发生。囊泡运输和微管(MT)细胞骨架有助于调节AJs,但其相互关系仍不清楚。我们对果蝇胚胎气管系统形成过程中MTs在细胞重塑中的作用进行了详细分析。特异性地在气管细胞中诱导MT解聚表明,MTs在气管细胞伸长并分支延伸的特定时间框架内是必不可少的。在没有MTs的情况下,每个分支的一个气管细胞过度伸长,最终导致分支断裂。三维定量分析表明,MTs对于维持AJs处的E-钙黏蛋白(Shotgun)和Par-3(Bazooka)水平至关重要。在顶端结构域维持E-钙黏蛋白/Par-3水平需要从头合成,而不是从顶端质膜内化和再循环。然而,E-钙黏蛋白和Par-3的顶端靶向需要功能性再循环内体,这表明该区室在将从头合成的E-钙黏蛋白靶向质膜中起中间作用。我们证明再循环内体的顶端富集依赖于MT动力蛋白动力蛋白,并且对于该囊泡区室的功能至关重要。此外,我们确定E-钙黏蛋白动力学和MT需求在重塑气管细胞与平面上皮细胞中有所不同。总之,我们的结果揭示了再循环内体的一种依赖于MT-动力蛋白的顶端限制,该限制通过在形态发生过程中维持AJs处的Par-3和E-钙黏蛋白水平来控制黏附。

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