MRC Laboratory for Molecular Cell Biology, University College London, Gower Street, London WC1E 6BT, UK.
MRC Laboratory for Molecular Cell Biology, University College London, Gower Street, London WC1E 6BT, UK; Department of Cell and Developmental Biology, University College London, Gower Street, London WC1E 6BT, UK.
Curr Biol. 2020 Jul 6;30(13):2419-2432.e4. doi: 10.1016/j.cub.2020.04.041. Epub 2020 May 14.
Cell divisions are essential for tissue growth. In pseudostratified epithelia, where nuclei are staggered across the tissue, each nucleus migrates apically before undergoing mitosis. Successful apical nuclear migration is critical for planar-orientated cell divisions in densely packed epithelia. Most previous investigations have focused on the local cellular mechanisms controlling nuclear migration. Inter-species and inter-organ comparisons of different pseudostratified epithelia suggest global tissue architecture may influence nuclear dynamics, but the underlying mechanisms remain elusive. Here, we use the developing Drosophila wing disc to systematically investigate, in a single epithelial type, how changes in tissue architecture during growth influence mitotic nuclear migration. We observe distinct nuclear dynamics at discrete developmental stages, as epithelial morphology changes. We use genetic and physical perturbations to show a direct effect of cell density on mitotic nuclear positioning. We find Rho kinase and Diaphanous, which facilitate mitotic cell rounding in confined cell conditions, are essential for efficient apical nuclear movement. Perturbation of Diaphanous causes increasing defects in apical nuclear migration as the tissue grows and cell density increases, and these defects can be reversed by acute physical reduction of cell density. Our findings reveal how the mechanical environment imposed on cells within a tissue alters the molecular and cellular mechanisms adopted by single cells for mitosis.
细胞分裂对于组织生长至关重要。在假复层上皮中,细胞核交错排列在组织中,每个细胞核在有丝分裂前都向顶端迁移。成功的顶端核迁移对于在紧密堆积的上皮中进行平面定向细胞分裂至关重要。大多数先前的研究都集中在控制核迁移的局部细胞机制上。不同假复层上皮的种间和器官间比较表明,整体组织架构可能会影响核动力学,但潜在机制仍不清楚。在这里,我们使用发育中的果蝇翅膀盘来系统地研究,在单一上皮类型中,生长过程中组织架构的变化如何影响有丝分裂核迁移。我们观察到上皮形态变化时,在不同的发育阶段存在明显不同的核动力学。我们使用遗传和物理扰动来显示细胞密度对有丝分裂核定位的直接影响。我们发现 Rho 激酶和 Diaphanous 在受限的细胞条件下促进有丝分裂细胞变圆,对于有效的顶端核运动是必不可少的。Diaphanous 的扰动会导致随着组织的生长和细胞密度的增加,顶端核迁移的缺陷越来越多,而通过急性物理降低细胞密度可以逆转这些缺陷。我们的研究结果揭示了组织内细胞所承受的机械环境如何改变单个细胞用于有丝分裂的分子和细胞机制。