论文标题

检查组装途径和主动纺锤体自组织的主动微管机械

Examining the assembly pathways and active microtubule mechanics underlying spindle self-organization

论文作者

Yan, Lucan, Fukuyama, Tatsuya, Yamaoka, Megumi, Maeda, Yusuke T., Shimamoto, Yuta

论文摘要

基于微管的有丝分裂主轴的双极组织对于细胞分裂中染色体的忠实分离至关重要。尽管我们对基因和蛋白质的广泛了解,但微管合奏如何组装成适当的双极形状的物理机制仍然难以捉摸。在这里,我们使用无细胞的爪蟾卵提取物和基于计算机的自动化形状分析研究了主轴自组织的途径。我们的显微镜测定使我们能够同时记录大量细胞质中数百个纺锤体的生长,并系统地分析在自组织过程中每个结构的形状。我们发现,成熟到双极形状的纺锤体采用的路线与最终有故障结构的路线,例如具有前极形状的结构。此外,成熟的结构是高度稳定的,而不同形状表型之间的转化很少。可视化微管的运动进一步揭示了一小部分微管,这些微管在额外的两极之间组装并将极线推开,这表明存在阻止极点聚结的活跃力量。我们共同提出,对延伸,钢管推杆力的大小和位置的适当控制对于建立纺锤双极性至关重要,同时防止多极性。

The bipolar organization of the microtubule-based mitotic spindle is essential for the faithful segregation of chromosomes in cell division. Despite our extensive knowledge of genes and proteins, the physical mechanism of how the ensemble of microtubules can assemble into a proper bipolar shape remains elusive. Here, we study the pathways of spindle self-organization using cell-free Xenopus egg extracts and computer-based automated shape analysis. Our microscopy assay allows us to simultaneously record the growth of hundreds of spindles in the bulk cytoplasm and systematically analyze the shape of each structure over the course of self-organization. We find that spindles that are maturing into a bipolar shape take a route that is distinct from those ending up with faulty structures, such as those of a tripolar shape. Moreover, matured structures are highly stable with little occasions of transformation between different shape phenotypes. Visualizing the movement of microtubules further reveals a fraction of microtubules that assemble between extra poles and push the poles apart, suggesting the presence of active extensile force that prevents pole coalescence. Together, we propose that a proper control over the magnitude and location of the extensile, pole-pushing force is crucial for establishing spindle bipolarity while preventing multipolarity.

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