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首页> 外文期刊>mSphere >Kinesin-5 Is Dispensable for Bipolar Spindle Formation and Elongation in Candida albicans, but Simultaneous Loss of Kinesin-14 Activity Is Lethal
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Kinesin-5 Is Dispensable for Bipolar Spindle Formation and Elongation in Candida albicans, but Simultaneous Loss of Kinesin-14 Activity Is Lethal

机译:Kinesin-5可分配用于双极主轴形成和念珠菌的伸长症,但同时丧失Kinesin-14活性是致命的

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摘要

Mitotic spindles assume a bipolar architecture through the concerted actions of microtubules, motors, and cross-linking proteins. In most eukaryotes, kinesin-5 motors are essential to this process, and cells will fail to form a bipolar spindle without kinesin-5 activity. Remarkably, inactivation of kinesin-14 motors can rescue this kinesin-5 deficiency by reestablishing the balance of antagonistic forces needed to drive spindle pole separation and spindle assembly. We show that the yeast form of the opportunistic fungus Candida albicans assembles bipolar spindles in the absence of its sole kinesin-5, Ca Kip1, even though this motor exhibits stereotypical cell-cycle-dependent localization patterns within the mitotic spindle. However, cells lacking Ca Kip1 function have shorter metaphase spindles and longer and more numerous astral microtubules. They also show defective hyphal development. Interestingly, a small population of Ca Kip1-deficient spindles break apart and reform two bipolar spindles in a single nucleus. These spindles then separate, dividing the nucleus, and then elongate simultaneously in the mother and bud or across the bud neck, resulting in multinucleate cells. These data suggest that kinesin-5-independent mechanisms drive assembly and elongation of the mitotic spindle in C. albicans and that Ca Kip1 is important for bipolar spindle integrity. We also found that simultaneous loss of kinesin-5 and kinesin-14 ( Ca Kar3Cik1) activity is lethal. This implies a divergence from the antagonistic force paradigm that has been ascribed to these motors, which could be linked to the high mitotic error rate that C. albicans experiences and often exploits as a generator of diversity. IMPORTANCE Candida albicans is one of the most prevalent fungal pathogens of humans and can infect a broad range of niches within its host. This organism frequently acquires resistance to antifungal agents through rapid generation of genetic diversity, with aneuploidy serving as a particularly important adaptive mechanism. This paper describes an investigation of the sole kinesin-5 in C. albicans , which is a major regulator of chromosome segregation. Contrary to other eukaryotes studied thus far, C. albicans does not require kinesin-5 function for bipolar spindle assembly or spindle elongation. Rather, this motor protein associates with the spindle throughout mitosis to maintain spindle integrity. Furthermore, kinesin-5 loss is synthetically lethal with loss of kinesin-14—canonically an opposing force producer to kinesin-5 in spindle assembly and anaphase. These results suggest a significant evolutionary rewiring of microtubule motor functions in the C. albicans mitotic spindle, which may have implications in the genetic instability of this pathogen.
机译:有丝分裂主轴通过微管,电机和交联蛋白的齐合作用来假设双极结构。在大多数真核节中,Kinesin-5电动机对该过程至关重要,并且细胞未能在没有Kinesin-5活性的情况下形成双极主轴。值得注意的是,Kinesin-14电机的失活可以通过重新建立驱动主轴杆分离和主轴组件所需的抗动力的平衡来拯救这种Kinesin-5缺乏。我们表明,机会性真菌念珠菌的酵母形式在没有其鞋底Kinesin-5,CA KIP1的情况下组装双极主轴,即使该电机在有丝分裂主轴内呈现陈规定型的细胞周期依赖性定位模式​​。然而,缺乏Ca Kip1功能的细胞具有较短的中期纺锤体和更长且众多的星形微管。他们还显示出缺陷的阳腿开发。有趣的是,少量CA KIP1缺陷的主轴分开并在单个核中改进两种双极纺锤。然后将这些主轴分开,划分细胞核,然后在母亲和芽或芽颈中同时伸长,导致多核细胞。这些数据表明,Kinesin-5独立机制驱动组件和C. albicans中的有丝分裂主轴的伸长型,并且CA KIP1对于双极主轴完整性很重要。我们还发现同时丧失Kinesin-5和Kinesin-14(Ca Kar3Cik1)活性是致命的。这意味着从已经归因于这些电动机的敌对力范例的分歧,这可能与C. albicans经历的高有丝分裂错误率相关联,并且通常作为多样性的发电机剥削。 Importance Candida albicans是人类最常见的真菌病原体之一,可以感染其主持人的广泛利基。这种有机体经常通过快速产生遗传多样性来获得对抗真菌剂的抵抗力,交通倍差作为一种特别重要的自适应机制。本文介绍了C. albicans中唯一的Kinesin-5的研究,这是染色体隔离的主要调节剂。与迄今为止研究的其他真核生物相反,C.古木儿不需要用于双极主轴组件或主轴伸长的Kinesin-5功能。相反,这种电动机蛋白质伴随着整个有丝分裂的主轴,以保持主轴完整性。此外,Kinesin-5损失是合成致命的,随着Kinesin-14-Cononally的损失,在主轴组件和后羟胺中的Kinesin-5中的相对的力制造商。这些结果表明,在C. albicans有丝分裂主轴中的微管运动功能的显着进化再加热,这可能对该病原体的遗传不稳定有影响。

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