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Dispersible hydrogel force sensors reveal patterns of solid mechanical stress in multicellular spheroid cultures

机译:分散式水凝胶力传感器揭示了多细胞球状培养物中固体机械应力的模式

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摘要

Understanding how forces orchestrate tissue formation requires technologies to map internal tissue stress at cellular length scales. Here, we develop ultrasoft mechanosensors that visibly deform under less than 10 Pascals of cell-generated stress. By incorporating these mechanosensors into multicellular spheroids, we capture the patterns of internal stress that arise during spheroid formation. We experimentally demonstrate the spontaneous generation of a tensional ‘skin’, only a few cell layers thick, at the spheroid surface, which correlates with activation of mechanobiological signalling pathways, and balances a compressive stress profile within the tissue. These stresses develop through cell-driven mechanical compaction at the tissue periphery, and suggest that the tissue formation process plays a critically important role in specifying mechanobiological function. The broad applicability of this technique should ultimately provide a quantitative basis to design tissues that leverage the mechanical activity of constituent cells to evolve towards a desired form and function.
机译:了解力如何组织组织形成需要技术来绘制细胞长度尺度上的内部组织应力。在这里,我们开发了超软机械传感器,该传感器在小于10帕斯卡的细胞产生的应力下会明显变形。通过将这些机械传感器并入多细胞球体中,我们捕获了在球体形成过程中出现的内部应力模式。我们通过实验证明,在球形表面上会自发产生张紧的“皮肤”,只有几层细胞层厚,这与机械生物学信号通路的激活相关,并平衡了组织内的压应力分布。这些应力通过细胞驱动的机械压紧作用在组织周围产生,并提示组织形成过程在指定机械生物学功能中起着至关重要的作用。该技术的广泛适用性最终应为设计组织提供定量依据,该组织利用组成细胞的机械活性向所需的形式和功能发展。

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