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Passive Mechanical Forces Control Cell-Shape Change during Drosophila Ventral Furrow Formation.

机译:果蝇腹沟形成过程中的被动机械力控制细胞形状的变化。

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During Drosophila gastrulation, the ventral mesodermal cells constrict their apices, undergo a series of coordinated cell-shape changes to form a ventral furrow (VF) and are subsequently internalized. Although it has been well documented that apical constriction is necessary for VF formation, the mechanism by which apical constriction transmits forces throughout the bulk tissue of the cell remains poorly understood. In this work, we develop a computational vertex model to investigate the role of the passive mechanical properties of the cellular blastoderm during gastrulation. We introduce to our knowledge novel data that confirm that the volume of apically constricting cells is conserved throughout the entire course of invagination. We show that maintenance of this constant volume is sufficient to generate invagination as a passive response to apical constriction when it is combined with region-specific elasticities in the membranes surrounding individual cells. We find that the specific sequence of cell-shape changes during VF formation is critically controlled by the stiffness of the lateral and basal membrane surfaces. In particular, our model demonstrates that a transition in basal rigidity is sufficient to drive VF formation along the same sequence of cell-shape change that we observed in the actual embryo, with no active force generation required other than apical constriction.
机译:在果蝇胃管形成过程中,腹侧中胚层细胞会收缩其顶点,经历一系列协调的细胞形状变化以形成腹沟(VF),然后被内化。尽管已经有充分的文献证明顶缩对于VF的形成是必需的,但是顶缩在整个细胞的整个组织内传递力的机制仍然知之甚少。在这项工作中,我们开发了一个计算顶点模型,以研究胃胚形成过程中细胞胚盘被动机械性能的作用。我们向我们的知识介绍新颖的数据,这些数据证实了在整个内陷过程中,根尖收缩细胞的体积是保守的。我们显示,当与周围单个细胞膜的区域特定弹性结合在一起时,维持此恒定体积足以产生内陷,作为对根尖收缩的被动反应。我们发现,VF形成过程中细胞形状变化的特定顺序受侧向和基底膜表面的刚度严格控制。特别地,我们的模型表明,基础刚度的过渡足以驱动VF沿着我们在实际胚胎中观察到的相同的细胞形状变化序列形成,除了顶端收缩以外,不需要产生主动力。

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