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Embryo-scale tissue mechanics during Drosophila gastrulation movements

机译:果蝇胃动运动过程中的胚胎尺度组织力学

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Morphogenesis of an organism requires the development of its parts to be coordinated in time and space. While past studies concentrated on defined cell populations, a synthetic view of the coordination of these events in a whole organism is needed for a full understanding. Drosophila gastrulation begins with the embryo forming a ventral furrow, which is eventually internalized. It is not understood how the rest of the embryo participates in this process. Here we use multiview selective plane illumination microscopy coupled with infrared laser manipulation and mutant analysis to dissect embryo-scale cell interactions during early gastrulation. Lateral cells have a denser medial–apical actomyosin network and shift ventrally as a compact cohort, whereas dorsal cells become stretched. We show that the behaviour of these cells affects furrow internalization. A computational model predicts different mechanical properties associated with tissue behaviour: lateral cells are stiff, whereas dorsal cells are soft. Experimental analysis confirms these properties in vivo .
机译:生物的形态发生需要其各个部分的发展在时间和空间上协调一致。尽管过去的研究集中在确定的细胞群体上,但需要全面了解这些事件在整个生物体内的协调作用。果蝇胃化开始于胚胎形成腹沟,最终被内化。尚不清楚其余的胚胎如何参与该过程。在这里,我们使用多视图选择性平面照明显微镜结合红外激光操作和突变分析来剖析早期胃泌尿过程中胚胎规模的细胞相互作用。外侧细胞具有较密集的内侧-顶端放线菌素网络,并作为紧凑的队列向腹侧转移,而背侧细胞则被拉伸。我们表明,这些细胞的行为影响犁内在化。计算模型预测与组织行为相关的不同机械性能:外侧细胞较硬,而背面细胞较软。实验分析证实了这些特性在体内。

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