首页> 美国卫生研究院文献>G3: GenesGenomesGenetics >Suppressor Analysis Uncovers That MAPs and Microtubule Dynamics Balance with the Cut7/Kinesin-5 Motor for Mitotic Spindle Assembly in Schizosaccharomyces pombe
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Suppressor Analysis Uncovers That MAPs and Microtubule Dynamics Balance with the Cut7/Kinesin-5 Motor for Mitotic Spindle Assembly in Schizosaccharomyces pombe

机译:抑制子分析发现Cut7 / Kinesin-5电动机在粟酒裂殖酵母中的有丝分裂纺锤体装配中MAP和微管动力学平衡。

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摘要

The Kinesin-5 motor Cut7 in Schizosaccharomyces pombe plays essential roles in spindle pole separation, leading to the assembly of bipolar spindle. In many organisms, simultaneous inactivation of Kinesin-14s neutralizes Kinesin-5 deficiency. To uncover the molecular network that counteracts Kinesin-5, we have conducted a genetic screening for suppressors that rescue the cut7-22 temperature sensitive mutation, and identified 10 loci. Next generation sequencing analysis reveals that causative mutations are mapped in genes encoding α-, β-tubulins and the microtubule plus-end tracking protein Mal3/EB1, in addition to the components of the Pkl1/Kinesin-14 complex. Moreover, the deletion of various genes required for microtubule nucleation/polymerization also suppresses the cut7 mutant. Intriguingly, Klp2/Kinesin-14 levels on the spindles are significantly increased in cut7 mutants, whereas these increases are negated by suppressors, which may explain the suppression by these mutations/deletions. Consistent with this notion, mild overproduction of Klp2 in these double mutant cells confers temperature sensitivity. Surprisingly, treatment with a microtubule-destabilizing drug not only suppresses cut7 temperature sensitivity but also rescues the lethality resulting from the deletion of cut7, though a single klp2 deletion per se cannot compensate for the loss of Cut7. We propose that microtubule assembly and/or dynamics antagonize Cut7 functions, and that the orchestration between these two factors is crucial for bipolar spindle assembly.
机译:粟酒裂殖酵母中的Kinesin-5电机Cut7在主轴极分离中起着至关重要的作用,从而导致了双极主轴的组装。在许多生物中,Kinesin-14s的同时失活可以中和Kinesin-5的缺乏。为了揭示抵消Kinesin-5的分子网络,我们进行了基因筛选,寻找可拯救cut7-22温度敏感突变的抑制剂,并鉴定了10个基因座。下一代测序分析表明,除了Pkl1 / Kinesin-14复合物的成分外,致病突变还位于编码α-,β-微管蛋白和微管正末端追踪蛋白Mal3 / EB1的基因中。此外,微管成核/聚合所需的各种基因的缺失也抑制了cut7突变体。有趣的是,cut7突变体中纺锤体上的Klp2 / Kinesin-14水平显着增加,而抑制子却抵消了这些增加,这可能解释了这些突变/缺失的抑制作用。与这个观点一致,在这些双突变细胞中Klp2的轻度过量生产赋予了温度敏感性。出乎意料的是,尽管单个klp2缺失本身不能补偿Cut7的损失,但使用微管不稳定药物进行的治疗不仅抑制了cut7的温度敏感性,还挽救了由于cut7缺失而导致的致死性。我们建议微管组装和/或动力学拮抗Cut7功能,并且这两个因素之间的编排对于双极主轴组装至关重要。

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