Department of Mechanical Engineering, University of California, Santa Barbara, CA, USA.
Institute of Mechanical Engineering, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.
Nat Mater. 2024 Nov;23(11):1592-1599. doi: 10.1038/s41563-024-01972-3. Epub 2024 Aug 12.
Jamming of cell collectives and associated rigidity transitions have been shown to play a key role in tissue dynamics, structure and morphogenesis. Cellular jamming is controlled by cellular density and the mechanics of cell-cell contacts. However, the contribution of subcellular organelles to the physical state of the emergent tissue is unclear. Here we report a nuclear jamming transition in zebrafish retina and brain tissues, where physical interactions between highly packed nuclei restrict cellular movements and control tissue mechanics and architecture. Computational modelling suggests that the nuclear volume fraction and anisotropy of cells control the emerging tissue physical state. Analysis of tissue architecture, mechanics and nuclear movements during eye development show that retina tissues undergo a nuclear jamming transition as they form, with increasing nuclear packing leading to more ordered cellular arrangements, reminiscent of the crystalline cellular packings in the functional adult eye. Our results reveal an important role of the cell nucleus in tissue mechanics and architecture.
细胞群体的聚集以及相关的刚性转变被证明在组织动力学、结构和形态发生中起着关键作用。细胞聚集受细胞密度和细胞-细胞接触力学的控制。然而,亚细胞细胞器对新兴组织物理状态的贡献尚不清楚。在这里,我们报告了斑马鱼视网膜和脑组织中的核聚集转变,其中高度堆积的核之间的物理相互作用限制了细胞的运动,并控制了组织的力学和结构。计算模型表明,核体积分数和细胞各向异性控制着新兴组织的物理状态。在眼睛发育过程中对组织结构、力学和核运动的分析表明,随着核堆积的增加,视网膜组织在形成过程中经历了核聚集转变,从而导致细胞排列更加有序,类似于功能成熟的眼睛中的晶体状细胞堆积。我们的结果揭示了细胞核在组织力学和结构中的重要作用。