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Distinct roles for antiparallel microtubule pairing and overlap during early spindle assembly

机译:早期锭子组装过程中反平行微管配对和重叠的不同作用

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During spindle assembly, microtubules may attach to kinetochores or pair to form antiparallel pairs or interpolar microtubules, which span the two spindle poles and contribute to mitotic pole separation and chromosome segregation. Events in the specification of the interpolar microtubules are poorly understood. Using three-dimensional electron tomography and analysis of spindle dynamical behavior in living cells, we investigated the process of spindle assembly. Unexpectedly, we found that the phosphorylation state of an evolutionarily conserved Cdk1 site (S360) in γ-tubulin is correlated with the number and organization of interpolar microtubules. Mimicking S360 phosphorylation (S360D) results in bipolar spindles with a normal number of microtubules but lacking interpolar microtubules. Inhibiting S360 phosphorylation (S360A) results in spindles with interpolar microtubules and high-angle, antiparallel microtubule pairs. The latter are also detected in wild-type spindles <1 μm in length, suggesting that high-angle microtubule pairing represents an intermediate step in interpolar microtubule formation. Correlation of spindle architecture with dynamical behavior suggests that microtubule pairing is sufficient to separate the spindle poles, whereas interpolar microtubules maintain the velocity of pole displacement during early spindle assembly. Our findings suggest that the number of interpolar microtubules formed during spindle assembly is controlled in part through activities at the spindle poles.
机译:在纺锤体组装过程中,微管可能会附着在动植物或成对的对上,形成反平行对或极间微管,它们跨过两个纺锤体极并有助于有丝分裂极分离和染色体分离。极间微管规范中的事件了解甚少。使用三维电子层析成像和活细胞纺锤动力学行为的分析,我们调查了纺锤组装的过程。出乎意料的是,我们发现γ-微管蛋白中进化保守的Cdk1位点(S360)的磷酸化状态与极间微管的数量和组织有关。模仿S360磷酸化(S360D)会导致双极纺锤体具有正常数量的微管,但缺乏极间微管。抑制S360磷酸化(S360A)会导致纺锤体带有极间微管和大角度,反平行的微管对。后者也在长度小于1μm的野生型纺锤体中检测到,这表明高角度微管配对代表了极间微管形成的中间步骤。主轴结构与动力学行为的相关性表明,微管配对足以分隔主轴极,而极间微管则在早期主轴组装过程中保持极位移的速度。我们的发现表明,纺锤体组装过程中形成的极间微管的数量部分受纺锤极的活动控制。

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