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A global pattern of mechanical stress polarizes cell divisions and cell shape in the growing Drosophila wing disc

机译:机械应力的整体模式使果蝇翼盘中的细胞分裂和细胞形状极化

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摘要

Organismal development is under genetic control. Ultimately, mechanical forces shape embryos. If we want to understand the precise regulation of size and shape in animals, we must dissect how forces are distributed in developing tissues, and how they drive cell behavior to shape organs. This has not been addressed fully in the context of growing tissues. As cells grow and divide, they exert a pressure on their neighbors. How these local stresses add up or dissipate as the tissue grows is an unanswered question. We address this issue in the growing wing imaginal disc of Drosophila larvae, the precursor of the adult wing. We used a quantitative approach to analyze the strains and stresses of cells of the wing pouch, and found a global pattern of stress whereby cells in the periphery of the tissue are mechanically stretched and cells in the center are compressed. This pattern has important consequences on cell shape in the wing pouch: cells respond to it by polarizing their acto-myosin cortex, and aligning their divisions with the main axis of cell stretch, thereby polarizing tissue growth. Ectopic perturbations of tissue growth by the Hippo signaling pathway reorganize this pattern in a non-autonomous manner, suggesting a synergy between tissue mechanics and growth control during wing disc morphogenesis.
机译:生物发展处于遗传控制之下。最终,机械力使胚胎成形。如果我们想了解动物大小和形状的精确调节,就必须剖析力在发育中的组织中的分布方式,以及它们如何驱动细胞行为来塑造器官。这在组织生长的情况下尚未得到充分解决。随着细胞的生长和分裂,它们向邻居施加压力。这些局部压力如何随着组织的生长而增加或消散是一个尚未解决的问题。我们在果蝇幼虫(成年机翼的前兆)不断增长的机翼假想盘中解决这个问题。我们使用定量方法分析了翼袋细胞的应变和应力,并发现了整体应力模式,从而组织外围的细胞被机械拉伸,中心的细胞被压缩。这种模式对翼袋中的细胞形状具有重要影响:细胞通过极化其肌动球蛋白皮层并使它们的分裂与细胞伸展的主轴对齐,从而对其做出反应,从而使组织生长极化。 Hippo信号通路对组织生长的异位摄动以非自主方式重组了这种模式,表明在翼片形态发生过程中组织力学与生长控制之间存在协同作用。

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