Petridou Nicoletta I, Skourides Paris A
Department of Biological Sciences, University of Cyprus, University Ave 1, New Campus, Nicosia 2109, Cyprus.
Nat Commun. 2016 Mar 8;7:10899. doi: 10.1038/ncomms10899.
Control of spindle orientation is a fundamental process for embryonic development, morphogenesis and tissue homeostasis, while defects are associated with tumorigenesis and other diseases. Force sensing is one of the mechanisms through which division orientation is determined. Here we show that integrin β1 plays a critical role in this process, becoming activated at the lateral regions of the cell cortex in a ligand-independent manner. This activation is force dependent and polar, correlating with the spindle capture sites. Inhibition of integrin β1 activation on the cortex and disruption of its asymmetric distribution leads to spindle misorientation, even when cell adhesion is β1 independent. Examining downstream targets reveals that a cortical mechanosensory complex forms on active β1, and regulates spindle orientation irrespective of cell context. We propose that ligand-independent integrin β1 activation is a conserved mechanism that allows cell responses to external stimuli.
纺锤体取向的控制是胚胎发育、形态发生和组织稳态的一个基本过程,而缺陷则与肿瘤发生和其他疾病相关。力感知是确定分裂取向的机制之一。在这里,我们表明整合素β1在这个过程中起关键作用,以不依赖配体的方式在细胞皮层的外侧区域被激活。这种激活是力依赖性的且具有极性,与纺锤体捕获位点相关。抑制皮层上整合素β1的激活及其不对称分布的破坏会导致纺锤体取向错误,即使细胞黏附不依赖β1。对下游靶点的研究表明,一种皮层机械传感复合体在活性β1上形成,并在不考虑细胞背景的情况下调节纺锤体取向。我们提出,不依赖配体的整合素β1激活是一种保守机制,使细胞能够对外界刺激做出反应。