上皮细胞形态改变参与输尿管芽分支形态发生的调控。

IF 4.2
Kristen Kurtzeborn, Vladislav Iaroshenko, Tomáš Zárybnický, Julia Koivula, Heidi Anttonen, Otto J M Mäkelä, Darren Bridgewater, Ramaswamy Krishnan, Ping Chen, Satu Kuure
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引用次数: 0

摘要

分支形态发生在包括肾脏在内的许多组织中协调器官发生,其中输尿管芽(UB)分支决定肾脏的大小和形状以及最终的肾单位数量。UB分支的分子调控已经得到了很好的研究,而UB分支过程中的细胞机制和组织组织却知之甚少。在这里,我们对上皮细胞的三维形态进行了表征,研究了细胞形状变化的调节机制,并分析了它们对正常和分支不健全芽尖中新分支形成的贡献。基于无偏机器学习的尖端上皮分割发现几何圆形到椭圆形的转化是促进生长方向变化以获得最佳分支复杂性的关键细胞机制。细胞形状和分子分析在分枝不功能上皮显示明显的失败凝聚细胞大小和改变其构象。这与粘附力的变化、肌动蛋白动力学的缺陷和基于MYH9的微管的紊乱一起,表明尖端细胞的生物物理特性发生了改变,而尖端细胞是做出和实现分支点决定的地方。数据表明,单个上皮细胞体积和形态的动态变化,以及最佳牵引应力,促进了UB尖端生态位中新分支的形成。基于这些结果,我们提出了一个上皮细胞拥挤与拉伸串联的模型,将单个细胞转化为椭圆和细长的形状。在UB壶腹向不对称壶腹过渡的过程中,这会产生局部曲率,从而驱动新分支的形成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Epithelial cell shape changes contribute to regulation of ureteric bud branching morphogenesis.

Branching morphogenesis orchestrates organogenesis in many tissues, including the kidney, where ureteric bud (UB) branching determines kidney size and shape and the final nephron number. Molecular regulation of UB branching is rather well studied, whereas the cellular mechanisms and tissue organization during UB arborization are less understood. Here, we characterized epithelial cell morphology in three dimensions (3D), studied mechanisms regulating cell shape changes, and analyzed their contribution to novel branch initiation in normal and branching-incompetent bud tips. Unbiased machine-learning-based segmentation of tip epithelia identified geometrical round-to-elliptical transformation as a key cellular mechanism facilitating growth direction changes to gain optimal branching complexity. Cell shape and molecular analyses in branching-incompetent epithelia demonstrated a distinct failure to condense cell size and modify its conformation. This, together with changes in adhesive forces, defective actin dynamics, and disorganization in myosin-9 (MYH9)-based microtubules, suggests altered biophysical properties in tip cells, where branch point decisions are made and actualized. The data demonstrate that dynamic changes in volume and morphology of individual epithelial cells, together with optimal traction stress, facilitate novel branch formation in the UB tip niche. Based on these results, we propose a model where epithelial cell crowding, in tandem with stretching, transforms individual cells into elliptical and elongated shapes. This creates local curvatures that drive new branch formation during the ampulla-to-asymmetric ampulla transition of the UB.

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