首页> 美国卫生研究院文献>The Journal of Biophysical and Biochemical Cytology >MAST/Orbit has a role in microtubule–kinetochore attachment and is essential for chromosome alignment and maintenance of spindle bipolarity
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MAST/Orbit has a role in microtubule–kinetochore attachment and is essential for chromosome alignment and maintenance of spindle bipolarity

机译:MAST /轨道在微管–动线粒附着中起作用对于染色体对齐和纺锤体双极性维持至关重要

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摘要

Multiple asters (MAST)/Orbit is a member of a new family of nonmotor microtubule-associated proteins that has been previously shown to be required for the organization of the mitotic spindle. Here we provide evidence that MAST/Orbit is required for functional kinetochore attachment, chromosome congression, and the maintenance of spindle bipolarity. In vivo analysis of Drosophila mast mutant embryos undergoing early mitotic divisions revealed that chromosomes are unable to reach a stable metaphase alignment and that bipolar spindles collapse as centrosomes move progressively closer toward the cell center and eventually organize into a monopolar configuration. Similarly, soon after depletion of MAST/Orbit in Drosophila S2 cells by double-stranded RNA interference, cells are unable to form a metaphase plate and instead assemble monopolar spindles with chromosomes localized close to the center of the aster. In these cells, kinetochores either fail to achieve end-on attachment or are associated with short microtubules. Remarkably, when microtubule dynamics is suppressed in MAST-depleted cells, chromosomes localize at the periphery of the monopolar aster associated with the plus ends of well-defined microtubule bundles. Furthermore, in these cells, dynein and ZW10 accumulate at kinetochores and fail to transfer to microtubules. However, loss of MAST/Orbit does not affect the kinetochore localization of D-CLIP-190. Together, these results strongly support the conclusion that MAST/Orbit is required for microtubules to form functional attachments to kinetochores and to maintain spindle bipolarity.
机译:多重紫苑(MAST)/轨道是非运动微管相关蛋白新家族的成员,以前已证明其是组织有丝分裂纺锤体所必需的。在这里,我们提供的证据表明,功能性动线粒附着,染色体转换和纺锤体双极性维持均需要MAST /轨道。在果蝇进行早期有丝分裂分裂的果蝇肥大突变体胚胎的体内分析表明,染色体无法达到稳定的中期对齐,并且随着中心体逐渐靠近细胞中心并最终组织成单极性结构,双极纺锤体崩溃。同样,果蝇S2细胞中的MAST /轨道由于双链RNA干扰而耗尽后,细胞无法形成中期板,而是组装了染色体位于紫spindle中心附近的单极纺锤体。在这些细胞中,动植物要么无法实现末端附着,要么与短微管相关。值得注意的是,当在MAST耗尽的细胞中微管动力学受到抑制时,染色体位于与明确定义的微管束正端相关的单极翠菊的外围。此外,在这些细胞中,动力蛋白和ZW10聚集在动植物上,无法转移到微管中。但是,MAST /轨道的丢失不会影响D-CLIP-190的动球定位。在一起,这些结果强烈支持这样的结论:微管需要MAST / Orbit才能形成与动植物的功能性连接并维持纺锤体双极性。

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