Pinheiro Diana, Hannezo Edouard, Herszterg Sophie, Bosveld Floris, Gaugue Isabelle, Balakireva Maria, Wang Zhimin, Cristo Inês, Rigaud Stéphane U, Markova Olga, Bellaïche Yohanns
Institut Curie, PSL Research University, CNRS UMR 3215, INSERM U934, F-75248 Paris Cedex 05, France.
Sorbonne Universités, UPMC Univ Paris 06, CNRS, CNRS UMR 3215, INSERM U934, F-75005, France.
Nature. 2017 May 4;545(7652):103-107. doi: 10.1038/nature22041. Epub 2017 Mar 15.
During epithelial cytokinesis, the remodelling of adhesive cell-cell contacts between the dividing cell and its neighbours has profound implications for the integrity, arrangement and morphogenesis of proliferative tissues. In both vertebrates and invertebrates, this remodelling requires the activity of non-muscle myosin II (MyoII) in the interphasic cells neighbouring the dividing cell. However, the mechanisms that coordinate cytokinesis and MyoII activity in the neighbours are unknown. Here we show that in the Drosophila notum epithelium, each cell division is associated with a mechanosensing and transmission event that controls MyoII dynamics in neighbouring cells. We find that the ring pulling forces promote local junction elongation, which results in local E-cadherin dilution at the ingressing adherens junction. In turn, the reduction in E-cadherin concentration and the contractility of the neighbouring cells promote self-organized actomyosin flows, ultimately leading to accumulation of MyoII at the base of the ingressing junction. Although force transduction has been extensively studied in the context of adherens junction reinforcement to stabilize adhesive cell-cell contacts, we propose an alternative mechanosensing mechanism that coordinates actomyosin dynamics between epithelial cells and sustains the remodelling of the adherens junction in response to mechanical forces.
在上皮细胞胞质分裂过程中,分裂细胞与其相邻细胞之间粘附性细胞间接触的重塑对增殖组织的完整性、排列和形态发生具有深远影响。在脊椎动物和无脊椎动物中,这种重塑都需要在与分裂细胞相邻的间期细胞中存在非肌肉肌球蛋白II(MyoII)的活性。然而,协调相邻细胞中胞质分裂和MyoII活性的机制尚不清楚。在这里,我们表明,在果蝇背板上皮中,每个细胞分裂都与一个机械传感和传递事件相关联,该事件控制相邻细胞中的MyoII动态。我们发现,环拉力促进局部连接伸长,这导致在进入的黏附连接处局部E-钙黏蛋白稀释。反过来,E-钙黏蛋白浓度的降低和相邻细胞的收缩性促进了自组织的肌动球蛋白流,最终导致MyoII在进入连接的基部积累。尽管在黏附连接增强以稳定粘附性细胞间接触的背景下,力转导已得到广泛研究,但我们提出了一种替代的机械传感机制,该机制可协调上皮细胞之间的肌动球蛋白动态,并响应机械力维持黏附连接的重塑。