论文标题

各向异性在收敛延伸过程中将细胞形状连接到组织流

Anisotropy links cell shapes to tissue flow during convergent extension

论文作者

Wang, Xun, Merkel, Matthias, Sutter, Leo B., Erdemci-Tandogan, Gonca, Manning, M. Lisa, Kasza, Karen E.

论文摘要

在发育中的胚胎中,组织在时间尺度上急剧流动和重组。这包括上皮组织,由于外力或内部细胞生成的力,它们通常在收敛的延伸运动中狭窄而细长。但是,允许或预防组织重组的机制,尤其是在强烈各向异性力的情况下,尚不清楚。我们在融合和延伸果蝇系中上皮中研究了这个问题,该果蝇菌属上皮显示了平面极化的肌球蛋白II并经历了来自相邻组织的各向异性力,并且我们表明,与各向同性组织相反,单独的细胞形状不足以预测快速细胞重建的发作。从理论考虑和顶点模型模拟中,我们预测,在各向异性组织中,需要两个实验可访问的细胞模式指标,细胞形状指数和细胞比对指数,以确定各向异性组织是否处于固体样或流体状态。我们表明,果蝇系中细胞形状和对齐的变化预测了野生型和蜗牛扭曲突变体胚胎中快速细胞重排的发作,当我们考虑细胞包装障碍时,我们的理论预测得到了进一步改善。这些发现表明,收敛扩展与向更流体样组织行为的过渡有关,这可能有助于在快速发育事件中适应组织形状的变化。

Within developing embryos, tissues flow and reorganize dramatically on timescales as short as minutes. This includes epithelial tissues, which often narrow and elongate in convergent extension movements due to anisotropies in external forces or in internal cell-generated forces. However, the mechanisms that allow or prevent tissue reorganization, especially in the presence of strongly anisotropic forces, remain unclear. We study this question in the converging and extending Drosophila germband epithelium, which displays planar polarized myosin II and experiences anisotropic forces from neighboring tissues, and we show that in contrast to isotropic tissues, cell shape alone is not sufficient to predict the onset of rapid cell rearrangement. From theoretical considerations and vertex model simulations, we predict that in anisotropic tissues two experimentally accessible metrics of cell patterns, the cell shape index and a cell alignment index, are required to determine whether an anisotropic tissue is in a solid-like or fluid-like state. We show that changes in cell shape and alignment over time in the Drosophila germband predict the onset of rapid cell rearrangement in both wild-type and snail twist mutant embryos, where our theoretical prediction is further improved when we also account for cell packing disorder. These findings suggest that convergent extension is associated with a transition to more fluid-like tissue behavior, which may help accommodate tissue shape changes during rapid developmental events.

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