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The Xenopus TACC Homologue, Maskin, Functions in Mitotic Spindle Assembly

机译:非洲爪蟾TACC同源物,Maskin,在有丝分裂纺锤体装配中的功能

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Maskin is the Xenopus homolog of the transforming acidic coiled coil (TACC)-family of microtubule and centrosome-interacting proteins. Members of this family share a ~200 amino acid coiled coil motif at their C-termini, but have only limited homology outside of this domain. In all species examined thus far, perturbations of TACC proteins lead to disruptions of cell cycle progression and/or embryonic lethality. In Drosophila , Caenorhabditis elegans , and humans, these disruptions have been attributed to mitotic spindle assembly defects, and the TACC proteins in these organisms are thought to function as structural components of the spindle. In contrast, cell division failure in early Xenopus embryo blastomeres has been attributed to a role of maskin in regulating the translation of, among others, cyclin B1 mRNA. In this study, we show that maskin, like other TACC proteins, plays a direct role in mitotic spindle assembly in Xenopus egg extracts and that this role is independent of cyclin B. Maskin immunodepletion and add-back experiments demonstrate that maskin, or a maskin-associated activity, is required for two distinct steps during spindle assembly in Xenopus egg extracts that can be distinguished by their response to “rescue” experiments. Defects in the “early” step, manifested by greatly reduced aster size during early time points in maskin-depleted extracts, can be rescued by readdition of purified full-length maskin. Moreover, defects in this step can also be rescued by addition of only the TACC-domain of maskin. In contrast, defects in the “late” step during spindle assembly, manifested by abnormal spindles at later time points, cannot be rescued by readdition of maskin. We show that maskin interacts with a number of proteins in egg extracts, including XMAP215, a known modulator of microtubule dynamics, and CPEB, a protein that is involved in translational regulation of important cell cycle regulators. Maskin depletion from egg extracts results in compromised microtubule asters and spindles and the mislocalization of XMAP215, but CPEB localization is unaffected. Together, these data suggest that in addition to its previously reported role as a translational regulator, maskin is also important for mitotic spindle assembly.
机译:Maskin是微管和与中心体相互作用的蛋白质的转化酸性卷曲螺旋(TACC)家族的非洲爪蟾同源物。该家族成员在其C末端共享〜200个氨基酸的卷曲螺旋基序,但在该结构域之外仅具有有限的同源性。到目前为止,在所有检查过的物种中,TACC蛋白的扰动会导致细胞周期进程和/或胚胎致死率的破坏。在果蝇,秀丽隐杆线虫和人类中,这些破坏归因于有丝分裂纺锤体装配缺陷,并且这些生物中的TACC蛋白被认为是纺锤体的结构成分。相反,早期非洲爪蟾胚胎卵裂球的细胞分裂失败被归因于maskin在调控cyclin B1 mRNA的翻译中的作用。在这项研究中,我们表明,与其他TACC蛋白一样,maskin在非洲爪蟾卵提取物中的有丝分裂纺锤体组装中也起直接作用,并且该作用独立于cyclinB。Maskin的免疫耗竭和附加实验表明,maskin或maskin在非洲爪蟾卵提取物中纺锤体组装过程中,两个不同的步骤需要具有相关的活性,这可以通过它们对“拯救”实验的反应来区分。 “早期”步骤中的缺陷表现为:在缺乏Maskin的提取物中,在早期时间点紫尺寸大大减小,可以通过重新纯化纯化的全长Maskin来挽救。此外,该步骤中的缺陷也可以通过仅添加maskin的TACC域来挽救。相反,纺锤组装过程中“后期”步骤中的缺陷(由稍后时间点的纺锤异常引起)无法通过掩盖胶的重新定位来挽救。我们表明,maskin与蛋提取物中的多种蛋白质相互作用,包括XMAP215(一种微管动力学的已知调节剂)和CPEB(一种参与重要细胞周期调节剂的翻译调控的蛋白)。鸡蛋提取物中的Maskin耗竭会导致微管翠菊和纺锤体受损以及XMAP215的定位错误,但CPEB定位不会受到影响。总之,这些数据表明,除了以前报道的作为翻译调节剂的作用外,maskin对有丝分裂纺锤体的组装也很重要。

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