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Nature and anisotropy of cortical forces orienting Drosophila tissue morphogenesis.

机译:定向果蝇组织形态发生的皮层力的性质和各向异性。

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The morphogenesis of developing embryos and organs relies on the ability of cells to remodel their contacts with neighbouring cells. Using quantitative modelling and laser nano-dissection, we probed the mechanics of a morphogenetic process, the elongation of Drosophila melanogaster embryos, which results from polarized cell neighbour exchanges. We show that anisotropy of cortical tension at apical cell junctions is sufficient to drive tissue elongation. We estimated its value through comparisons between in silico and in vivo data using various tissue descriptors. Nano-dissection of the actomyosin network indicates that tension is anisotropically distributed and depends on myosin II accumulation. Junction relaxation after nano-dissection also suggests that cortical elastic forces are dominant in this process. Interestingly, fluctuations in vertex position (points where three or more cells meet) facilitate neighbour exchanges. We delineate the contribution of subcellular tensile activity polarizing junction remodelling, and the permissive role of vertex fluctuations during tissue elongation.
机译:发育中的胚胎和器官的形态发生取决于细胞重塑其与邻近细胞的接触的能力。使用定量建模和激光纳米剖析,我们探讨了一个形态发生过程的机制,果蝇黑腹果蝇胚胎的伸长,这是由极化的细胞邻居交换导致的。我们表明,在顶细胞连接处的皮质张力的各向异性足以驱动组织伸长。我们通过使用各种组织描述符比较计算机和体内数据来评估其价值。肌动球蛋白网络的纳米解剖表明张力是各向异性分布的,并取决于肌球蛋白II的积累。纳米解剖后的结松弛也表明皮质弹性力在此过程中占主导地位。有趣的是,顶点位置的波动(三个或更多单元相交的点)有助于邻居交换。我们描绘了亚细胞拉伸活性极化连接重塑的贡献,以及组织伸长过程中顶点波动的允许作用。

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