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Transient junction anisotropies orient annular cell polarization in the Drosophila airway tubes

机译:果蝇气道管中的瞬态结各向异性使环形细胞极化定向。

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摘要

In contrast to planes, three-dimensional (3D) structures such as tubes are physically anisotropic. Tubular organs exhibit a striking orientation of landmarks according to the physical anisotropy of the 3D shape(1-4), in addition to planar cell polarization(5,6). However, the influence of 3D tissue topography on the constituting cells remains underexplored(7-9). Here, we identify a regulatory network polarizing cellular biochemistry according to the physical anisotropy of the 3D tube geometry (tube cell polarization) by a genome-wide, tissue-specific RNAi screen. During Drosophila airway remodelling, each apical cellular junction is equipotent to establish perpendicular actomyosin cables, irrespective of the longitudinal or transverse tube axis. A dynamic transverse enrichment of atypical protein kinase C (aPKC) shifts the balance and transiently targets activated small GTPase RhoA, myosin phosphorylation and Rab11 vesicle trafficking to longitudinal junctions. We propose that the PAR complex translates tube physical anisotropy into longitudinal junctional anisotropy, where cell cell communication aligns the contractile cytoskeleton of neighbouring cells.
机译:与平面相反,三维(3D)结构(例如管)在物理上是各向异性的。根据3D形状的物理各向异性(1-4),除了平面细胞极化(5,6)外,管状器官还表现出明显的界标方向。然而,3D组织形貌对构成细胞的影响仍未探索(7-9)。在这里,我们通过全基因组范围内的组织特异性RNAi筛选,根据3D管几何形状的物理各向异性(管细胞极化),确定了一种极化细胞生物化学的调控网络。在果蝇气道重塑过程中,每个根尖细胞交界处都等效于建立垂直的放线菌素电缆,而与纵向或横向管轴无关。动态非典型蛋白激酶C(aPKC)的横向富集改变了平衡,并短暂地将活化的小GTPase RhoA,肌球蛋白磷酸化和Rab11囊泡运输靶向至纵向连接。我们提出,PAR复合物将管的物理各向异性转变为纵向连接各向异性,其中细胞间的通讯使相邻细胞的收缩细胞骨架对齐。

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