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Cell cycle regulation of central spindle assembly

机译:中央主轴组件的细胞周期调节

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The bipolar mitotic spindle is responsible for segregating sister chromatids at anaphase. Microtubule motor proteins generate spindle bipolarity and enable the spindle to perform mechanical work(1). A major change in spindle architecture occurs at anaphase onset when central spindle assembly begins. This structure regulates the initiation of cytokinesis and is essential for its completion(2). Central spindle assembly requires the central-spindlin complex composed of the Caenorhabditis elegans ZEN-4 (mammalian orthologue MKLP1) kinesin-like protein and the Rho family GAP CYK-4 (MgcRacGAP). Here we describe a regulatory mechanism that controls the timing of central spindle assembly. The mitotic kinase Cdk1/cyclin B phosphorylates the motor domain of ZEN-4 on a conserved site within a basic amino-terminal extension characteristic of the MKLP1 subfamily. Phosphorylation by Cdk1 diminishes the motor activity of ZEN-4 by reducing its affinity for microtubules. Preventing Cdk1 phosphorylation of ZEN-4/MKLP1 causes enhanced metaphase spindle localization and defects in chromosome segregation. Thus, phosphoregulation of the motor domain of MKLP1 kinesin ensures that central spindle assembly occurs at the appropriate time in the cell cycle and maintains genomic stability.
机译:双极有丝分裂纺锤体负责后期分离姐妹染色单体。微管运动蛋白产生纺锤体双极性,并使纺锤体能够执行机械工作(1)。当中心主轴组件开始时,主轴结构发生了重大变化。这种结构调节胞质分裂的开始,是其完成的关键(2)。中心纺锤体组装需要由秀丽隐杆线虫ZEN-4(哺乳动物直系同源MKLP1)驱动蛋白样蛋白和Rho家族GAP CYK-4(MgcRacGAP)组成的中央spindlin复合体。在这里,我们描述了一种控制中心主轴组装时间的调节机制。有丝分裂激酶Cdk1 / cyclin B磷酸化ZEN-4的马达结构域在MKLP1亚家族的基本氨基末端延伸特征内的保守位点。 Cdk1的磷酸化通过降低ZEN-4对微管的亲和力来降低其运动活性。防止ZEN-4 / MKLP1的Cdk1磷酸化会导致中期纺锤体定位增强和染色体分离缺陷。因此,MKLP1驱动蛋白的马达结构域的磷酸化确保了中心纺锤体组装在细胞周期的适当时间发生并保持了基因组稳定性。

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