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首页> 外文期刊>Nature Communications >Kinesin-5-independent mitotic spindle assembly requires the antiparallel microtubule crosslinker Ase1 in fission yeast
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Kinesin-5-independent mitotic spindle assembly requires the antiparallel microtubule crosslinker Ase1 in fission yeast

机译:驱动蛋白5独立有丝分裂纺锤体组装需要裂殖酵母中的反平行微管交联剂Ase1。

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摘要

Bipolar spindle assembly requires a balance of forces where kinesin-5 produces outward pushing forces to antagonize the inward pulling forces from kinesin-14 or dynein. Accordingly, Kinesin-5 inactivation results in force imbalance leading to monopolar spindle and chromosome segregation failure. In fission yeast, force balance is restored when both kinesin-5 Cut7 and kinesin-14 Pkl1 are deleted, restoring spindle bipolarity. Here we show that the cut7Δpkl1Δ spindle is fully competent for chromosome segregation independently of motor activity, except for kinesin-6 Klp9, which is required for anaphase spindle elongation. We demonstrate that cut7Δpkl1Δ spindle bipolarity requires the microtubule antiparallel bundler PRC1/Ase1 to recruit CLASP/Cls1 to stabilize microtubules. Brownian dynamics-kinetic Monte Carlo simulations show that Ase1 and Cls1 activity are sufficient for initial bipolar spindle formation. We conclude that pushing forces generated by microtubule polymerization are sufficient to promote spindle pole separation and the assembly of bipolar spindle in the absence of molecular motors.
机译:双极主轴组件需要平衡力,其中kinesin-5产生向外推力以对抗来自kinesin-14或dynein的向内拉力。因此,Kinesin-5失活导致力失衡,导致单极纺锤体和染色体分离失败。在裂变酵母中,同时删除kinesin-5 Cut7和kinesin-14 Pkl1时,力平衡得以恢复,从而恢复纺锤体双极性。在这里,我们显示cut7Δpkl1Δ纺锤体完全独立于染色体分离,而与运动活动无关,除了驱动蛋白6 Klp9,这是后期纺锤体伸长所必需的。我们证明cut7Δpkl1Δ纺锤体双极性要求微管反平行束管PRC1 / Ase1募集CLASP / Cls1来稳定微管。布朗动力学动力学的蒙特卡洛模拟表明,Ase1和Cls1活性足以形成初始的双极纺锤体。我们得出的结论是,在没有分子马达的情况下,微管聚合产生的推力足以促进主轴极分离和双极主轴的组装。

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