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Active superelasticity in three-dimensional epithelia of controlledshape

机译:受控制的三维上皮细胞的主动超弹性形状

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摘要

Fundamental biological processes are carried out by curved epithelial sheets enclosing a pressurized lumen. How these sheets develop and withstand three-dimensional deformations has remained unclear. By combining measurements of epithelial tension and shape with theoretical modeling, here we show that epithelial sheets are active superelastic materials. We produce arrays of epithelial domes with controlled geometry. Quantification of luminal pressure and epithelial tension reveals a tensional plateau over several-fold areal strains. These extreme tissue strains are accommodated by highly heterogeneous cellular strains, in seeming contradiction with the measured tensional uniformity. This phenomenology is reminiscent of superelasticity, a behavior generally attributed to microscopic material instabilities in metal alloys. We show that this instability is triggered in epithelial cells by a stretch-induced dilution of the actin cortex and rescued by the intermediate filament network. Our study unveils a new type of mechanical behavior -active superelasticity- that enables epithelial sheets to sustain extreme stretching under constant tension.
机译:基本生物学过程通过包围加压内腔的弯曲上皮薄片进行。这些板如何发展并承受三维变形尚不清楚。通过将上皮张力和形状的测量与理论模型相结合,在这里我们表明上皮薄片是活性超弹性材料。我们生产具有受控几何形状的上皮穹顶阵列。腔压力和上皮张力的定量揭示了在数倍的区域应变上的张力平台。这些极端的组织应变被高度异质的细胞应变所容纳,这似乎与测得的张力均匀性相矛盾。这种现象使人联想到超弹性,这种现象通常归因于金属合金中微观材料的不稳定性。我们表明这种不稳定性是由肌动蛋白皮层的拉伸诱导稀释而由上皮细胞触发的,并由中间丝网络拯救。我们的研究揭示了一种新型的机械行为-主动超弹性-使上皮片材在恒定张力下保持极高的拉伸。

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