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首页> 外文期刊>Developmental cell >Spindle Position in Symmetric Cell Divisions during Epiboly Is Controlled by Opposing and Dynamic Apicobasal Forces
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Spindle Position in Symmetric Cell Divisions during Epiboly Is Controlled by Opposing and Dynamic Apicobasal Forces

机译:轴在对称的细胞分裂中的轴位置在反对和动态的肢端力控制。

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Orientation of cell division is a vital aspect of tissue morphogenesis and growth. Asymmetric divisions generate cell fate diversity and epithelial stratification, whereas symmetric divisions contribute to tissue growth, spreading, and elongation. Here, we describe a mechanism for positioning the spindle in symmetric cell divisions of an embryonic epithelium. We show that during the early stages of epiboly, spindles in the epithelium display dynamic behavior within the plane of the epithelium but are kept firmly within this plane to give a symmetric division. This dynamic stability relies on balancing counteracting forces: an apically directed force exerted by F-actin/myosin-2 via active cortical flow and a basally directed force mediated by microtubules and myosin-10. When both forces are disrupted, spindle orientation deviates from the epithelial plane, and epithelial surface is reduced. We propose that this dynamic mechanism maintains symmetric divisions while allowing the quick adjustment of division plane to facilitate even tissue spreading. Symmetric cell divisions are vital for tissue growth and depend upon the accurate positioning of the mitotic spindle. Woolner and Papalopulu show that during the symmetric divisions of a developing epithelium, spindles are held in place along the apicobasal axis through a balance of opposing, dynamic microtubule and actomyosin forces.
机译:细胞分裂的方向是组织形态发生和生长的重要方面。不对称的分裂产生细胞命运的多样性和上皮分层,而对称的分裂则有助于组织的生长,扩散和伸长。在这里,我们描述了将主轴定位在胚胎上皮的对称细胞分裂中的机制。我们显示在外皮的早期阶段,上皮中的纺锤体在上皮平面内显示动态行为,但牢固地保持在该平面内以提供对称的分割。这种动态稳定性取决于平衡的反作用力:F-肌动蛋白/肌球蛋白2通过主动皮层流施加的根尖方向的力,以及微管和肌球蛋白10介导的基本方向的力。当两个力都破坏时,纺锤定向会偏离上皮平面,并且上皮表面会缩小。我们建议这种动态机制保持对称的分割,同时允许快速调整分割平面以促进均匀的组织扩散。对称的细胞分裂对于组织生长至关重要,并取决于有丝分裂纺锤体的精确定位。伍尔纳(Woolner)和帕帕洛普鲁(Papalopulu)显示,在发育中的上皮的对称分裂过程中,纺锤体通过对立的动态微管力和肌动球蛋白力的平衡沿纺锤骨基底轴固定。

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