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Unrestrained Spindle Elongation during Recovery from Spindle Checkpoint Activation in cdc15-2 Cells Results in Mis-Segregation of Chromosomes

机译:从cdc15-2细胞中的主轴检查点激活恢复过程中不受约束的主轴伸长导致染色体的错误分离

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摘要

During normal metaphase in Saccharomyces cerevisiae, chromosomes are captured at the kinetochores by microtubules emanating from the spindle pole bodies at opposite poles of the dividing cell. The balance of forces between the cohesins holding the replicated chromosomes together and the pulling force from the microtubules at the kinetochores result in the biorientation of the sister chromatids before chromosome segregation. The absence of kinetochore–microtubule interactions or loss of cohesion between the sister chromatids triggers the spindle checkpoint which arrests cells in metaphase. We report here that an MEN mutant, cdc15-2, though competent in activating the spindle assembly checkpoint when exposed to Noc, mis-segregated chromosomes during recovery from spindle checkpoint activation. cdc15-2 cells arrested in Noc, although their Pds1p levels did not accumulate as well as in wild-type cells. Genetic analysis indicated that Pds1p levels are lower in a mad2Δ cdc15-2 and bub2Δ cdc15-2 double mutants compared with the single mutants. Chromosome mis-segregation in the mutant was due to premature spindle elongation in the presence of unattached chromosomes, likely through loss of proper control on spindle midzone protein Slk19p and kinesin protein, Cin8p. Our data indicate that a slower rate of transition through the cell division cycle can result in an inadequate level of Pds1p accumulation that can compromise recovery from spindle assembly checkpoint activation.
机译:在酿酒酵母的正常中期期间,染色体是由分裂细胞相反极的纺锤极体发出的微管捕获在动植物的。将复制的染色体保持在一起的粘着蛋白之间的力平衡与动植物体中微管的拉力之间的平衡导致了染色体分离前姐妹染色单体的生物取向。姐妹染色单体之间没有动粒-微管相互作用或内聚力丧失会触发纺锤体检查点,从而将细胞停滞在中期。我们在这里报告说,一个MEN突变体cdc15-2,虽然能够在暴露于Noc时激活纺锤体装配检查点,但在从纺锤体检查点激活中恢复的过程中染色体错位。尽管cdc15-2细胞的Pds1p水平没有像野生型细胞那样积累,但仍被Noc阻滞。遗传分析表明,mad2Δcdc15-2和bub2Δcdc15-2双突变体中的Pds1p水平低于单突变体。突变体中的染色体错误分离是由于在未连接染色体的情况下纺锤体过早伸长所致,可能是由于对纺锤体中区蛋白Slk19p和驱动蛋白Cin8p失去了适当的控制。我们的数据表明,通过细胞分裂周期的较慢转变速率可能导致Pds1p积累水平不足,从而损害从纺锤体装配检查点激活中恢复的能力。

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