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果蝇胚胎早期纺锤体组装:涉及细胞骨架动力学和核力学的力平衡的作用

Early spindle assembly in Drosophila embryos: role of a force balance involving cytoskeletal dynamics and nuclear mechanics.

作者信息

Cytrynbaum E N, Sommi P, Brust-Mascher I, Scholey J M, Mogilner A

机构信息

Laboratory of Cell and Computational Biology, Center for Genetics and Development, University of California, Davis, Davis, CA 95616, USA.

出版信息

Mol Biol Cell. 2005 Oct;16(10):4967-81. doi: 10.1091/mbc.e05-02-0154. Epub 2005 Aug 3.

Abstract

Mitotic spindle morphogenesis depends upon the action of microtubules (MTs), motors and the cell cortex. Previously, we proposed that cortical- and MT-based motors acting alone can coordinate early spindle assembly in Drosophila embryos. Here, we tested this model using microscopy of living embryos to analyze spindle pole separation, cortical reorganization, and nuclear dynamics in interphase-prophase of cycles 11-13. We observe that actin caps remain flat as they expand and that furrows do not ingress. As centrosomes separate, they follow a linear trajectory, maintaining a constant pole-to-furrow distance while the nucleus progressively deforms along the elongating pole-pole axis. These observations are incorporated into a model in which outward forces generated by zones of active cortical dynein are balanced by inward forces produced by nuclear elasticity and during cycle 13, by Ncd, which localizes to interpolar MTs. Thus, the force-balance driving early spindle morphogenesis depends upon MT-based motors acting in concert with the cortex and nucleus.

摘要

有丝分裂纺锤体形态发生依赖于微管(MTs)、马达蛋白和细胞皮层的作用。此前,我们提出基于皮层和微管的马达蛋白单独作用可协调果蝇胚胎中的早期纺锤体组装。在此,我们使用活胚胎显微镜技术测试了该模型,以分析第11 - 13次细胞周期间期中-前期的纺锤体极分离、皮层重组和核动态。我们观察到肌动蛋白帽在扩展时保持扁平,且沟不会内陷。随着中心体分离,它们沿着线性轨迹移动,在细胞核沿伸长的极-极轴逐渐变形时,保持恒定的极到沟的距离。这些观察结果被纳入一个模型,其中活跃皮层动力蛋白区域产生的向外力由核弹性产生的向内力平衡,在第13次细胞周期中,由定位于极间微管的Ncd平衡。因此,驱动早期纺锤体形态发生的力平衡依赖于基于微管的马达蛋白与皮层和细胞核协同作用。

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