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Coupling between apical tension and basal adhesion allow epithelia to collectively sense and respond to substrate topography over long distances

机译:根尖张力和基底附着力之间的耦合使上皮能够在长距离上共同感知并响应基底的形貌

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摘要

Epithelial sheets fold into complex topographies that contribute to their function in vivo. Cells can sense and respond to substrate topography in their immediate vicinity by modulating their interfacial mechanics, but the extent to which these mechanical properties contribute to their ability to sense substrate topography across length scales larger than a single cell has not been explored in detail. To study the relationship between the interfacial mechanics of single cells and their collective behavior as tissues, we grew cell-sheets on substrates engraved with surface features spanning macroscopic length-scales. We found that many epithelial cell-types sense and respond to substrate topography, even when it is locally nearly planar. Cells clear or detach from regions of local negative curvature, but not from regions with positive or no curvature. We investigated this phenomenon using a finite element model where substrate topography is coupled to epithelial response through a balance of tissue contractility and adhesive forces. The model correctly predicts the focal sites of cell-clearing and epithelial detachment. Furthermore, the model predicts that local tissue response to substrate curvature is a function of the surrounding topography of the substrate across long distances. Analysis of cell-cell and cell-substrate contact angle suggests a relationship between these single-cell interfacial properties, epithelial interfacial properties, and collective epithelial response to substrate topography. Finally, we show that contact angles change upon activation of oncogenes or inhibition of cell-contractility, and that these changes correlate with collective epithelial response. Our results demonstrate that in mechanically integrated epithelial sheets, cell contractility can be transmitted through multiple cells and focused by substrate topography to affect a behavioral response at distant sites.
机译:上皮薄片折叠成复杂的形貌,从而在体内起作用。细胞可以通过调节其界面力学来感测并响应其附近区域的底物形貌,但是尚未详细探讨这些机械性能对它们在大于单个细胞的整个长度范围内感测底物形貌的能力的影响程度。为了研究单细胞的界面力学与其作为组织的集体行为之间的关系,我们在刻有宏观尺度的表面特征的基质上生长了细胞片。我们发现,即使上皮细胞局部局部接近平面,许多上皮细胞类型也可以感知并响应它们。像元从局部负曲率的区域清除或分离,但不从正曲率的区域清除或分离。我们使用有限元模型研究了这种现象,其中底物形貌通过组织收缩力和粘附力的平衡耦合到上皮反应。该模型可以正确预测细胞清除和上皮脱离的病灶。此外,该模型预测局部组织对基底曲率的响应是长距离内基底周围地形的函数。细胞-细胞和细胞-基质接触角的分析表明这些单细胞界面特性,上皮界面特性和对基质形貌的集体上皮反应之间的关系。最后,我们显示接触角在激活癌基因或抑制细胞收缩后发生变化,并且这些变化与集体上皮反应相关。我们的结果表明,在机械整合的上皮细胞片中,细胞收缩力可以通过多个细胞传递,并通过底物形貌聚焦,从而影响远处的行为反应。

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