Department of Mechanical Engineering, University of California, Santa Barbara, Santa Barbara, CA 93106, USA.
Department of Chemical Engineering, University of California, Santa Barbara, Santa Barbara, CA 93106, USA.
J R Soc Interface. 2023 Jul;20(204):20230160. doi: 10.1098/rsif.2023.0160. Epub 2023 Jul 5.
The ability of cells to reorganize in response to external stimuli is important in areas ranging from morphogenesis to tissue engineering. While nematic order is common in biological tissues, it typically only extends to small regions of cells interacting via steric repulsion. On isotropic substrates, elongated cells can co-align due to steric effects, forming ordered but randomly oriented finite-size domains. However, we have discovered that flat substrates with nematic order can induce global nematic alignment of dense, spindle-like cells, thereby influencing cell organization and collective motion and driving alignment on the scale of the entire tissue. Remarkably, single cells are not sensitive to the substrate's anisotropy. Rather, the emergence of global nematic order is a collective phenomenon that requires both steric effects and molecular-scale anisotropy of the substrate. To quantify the rich set of behaviours afforded by this system, we analyse velocity, positional and orientational correlations for several thousand cells over days. The establishment of global order is facilitated by enhanced cell division along the substrate's nematic axis, and associated extensile stresses that restructure the cells' actomyosin networks. Our work provides a new understanding of the dynamics of cellular remodelling and organization among weakly interacting cells.
细胞响应外部刺激重新组织的能力在形态发生到组织工程等领域都非常重要。虽然向列有序在生物组织中很常见,但它通常只延伸到通过位阻排斥相互作用的小细胞区域。在各向同性基底上,由于位阻效应,伸长的细胞可以共取向,形成有序但随机取向的有限大小域。然而,我们发现具有向列有序的平坦基底可以诱导密集、纺锤状细胞的整体向列对齐,从而影响细胞组织和集体运动,并在整个组织的尺度上驱动对齐。值得注意的是,单个细胞对基底的各向异性不敏感。相反,整体向列有序的出现是一种集体现象,需要位阻效应和基底的分子尺度各向异性。为了量化该系统提供的丰富行为集,我们分析了数千个细胞在数天内的速度、位置和方向相关性。通过沿着基底的向列轴增强细胞分裂,以及与细胞的肌动球蛋白网络重构相关的伸展应力,促进了全局有序的建立。我们的工作为理解弱相互作用细胞之间的细胞重塑和组织动态提供了新的认识。