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Mechanosensitive Junction Remodeling Promotes Robust Epithelial Morphogenesis

机译:机械敏感结重建促进强大的上皮形态发生

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摘要

Morphogenesis of epithelial tissues requires tight spatiotemporal coordination of cell shape changes. In vivo, many tissue-scale shape changes are driven by pulsatile contractions of intercellular junctions, which are rectified to produce irreversible deformations. The functional role of this pulsatory ratchet and its mechanistic basis remain unknown. Here we combine theory and biophysical experiments to show that mechanosensitive tension remodeling of epithelial cell junctions promotes robust epithelial shape changes via ratcheting. Using optogenetic control of actomyosin contractility, we find that epithelial junctions show elastic behavior under low contractile stress, returning to their original lengths after contraction, but undergo irreversible deformation under higher magnitudes of contractile stress. Existing vertex-based models for the epithelium are unable to capture these results, with cell junctions displaying purely elastic or fluid-like behaviors, depending on the choice of model parameters. To describe the experimental results, we propose a modified vertex model with two essential ingredients for junction mechanics: thresholded tension remodeling and continuous strain relaxation. First, junctions must overcome a critical strain threshold to trigger tension remodeling, resulting in irreversible junction length changes. Second, there is a continuous relaxation of junctional strain that removes mechanical memory from the system. This enables pulsatile contractions to further remodel cell shape via mechanical ratcheting. Taken together, the combination of mechanosensitive tension remodeling and junctional strain relaxation provides a robust mechanism for large-scale morphogenesis.
机译:上皮组织的形态发生需要紧张的细胞形状变化的时尚协调。在体内,许多组织尺度的形状变化是由细胞间隙的脉动收缩驱动,这被整流以产生不可逆变形。这种脉动棘轮的功能作用及其机械基础仍然未知。在这里,我们将理论和生物物理实验结合在一起,表明上皮细胞连接的机械敏感张力重塑通过棘轮促进了鲁棒的上皮形状变化。使用肌动素对抗合成性的致敏控制,发现上皮连接表现出在低收缩应力下的弹性行为,在收缩后返回原来的长度,但在较高的收缩应力下进行不可逆变形。基于顶部的上皮的基于顶点的模型无法捕获这些结果,其具有纯粹的弹性或流体状行为的单元连接,这取决于模型参数的选择。为了描述实验结果,我们提出了一种改进的顶点模型,具有两个基本成分的结法:阈值张力改造和连续应变松弛。首先,接合部必须克服临界应变阈值以触发张力重塑,导致不可逆的结长变化。其次,连续松弛连接菌株,从系统中去除机械存储器。这使得脉动凹陷通过机械棘轮使得脉动凹陷能够进一步改造细胞形状。组合在一起,机械敏感张力重塑和连接应变松弛的组合为大规模的形态发生提供了一种强大的机制。

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