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PNAS Plus: Differential growth triggers mechanical feedback that elevates Hippo signaling

机译:PNAS Plus:差异性增长触发机械反馈从而提升河马信号

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摘要

Mechanical stress can influence cell proliferation in vitro, but whether it makes a significant contribution to growth control in vivo, and how it is modulated and experienced by cells within developing tissues, has remained unclear. Here we report that differential growth reduces cytoskeletal tension along cell junctions within faster-growing cells. We propose a theoretical model to explain the observed reduction of tension within faster-growing clones, supporting it by computer simulations based on a generalized vertex model. This reduced tension modulates a biomechanical Hippo pathway, decreasing recruitment of Ajuba LIM protein and the Hippo pathway kinase Warts, and decreasing the activity of the growth-promoting transcription factor Yorkie. These observations provide a specific mechanism for a mechanical feedback that contributes to evenly distributed growth, and we show that genetically suppressing mechanical feedback alters patterns of cell proliferation in the developing Drosophila wing. By providing experimental support for the induction of mechanical stress by differential growth, and a molecular mechanism linking this stress to the regulation of growth in developing organs, our results confirm and extend the mechanical feedback hypothesis.
机译:机械应力可以影响体外的细胞增殖,但是尚不清楚它是否对体内的生长控制有重大贡献,以及如何被发育中的组织调节和经历。在这里,我们报告差异生长降低了生长较快的细胞内沿细胞接头的细胞骨架张力。我们提出了一种理论模型来解释观察到的快速增长的克隆中张力的降低,并通过基于广义顶点模型的计算机模拟来支持它。这种降低的张力调节了生物力学的Hippo途径,减少了Ajuba LIM蛋白和Hippo途径激酶疣的募集,并降低了促进生长的转录因子Yorkie的活性。这些观察结果为机械反馈提供了一种特定的机制,有助于均匀分布的生长,并且我们证明了遗传抑制机械反馈会改变果蝇翅中细胞增殖的模式。通过为差异生长引起的机械应力诱导提供实验支持,以及将这种应力与发育中器官的生长调节联系起来的分子机制,我们的结果证实并扩展了机械反馈假设。

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