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Spindle Pole Mechanics Studied in Mitotic Asters: Dynamic Distribution of Spindle Forces through Compliant Linkages

机译:研究有丝分裂紫苑中的主轴杆力学:通过顺应性连杆的主轴力的动态分布

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摘要

During cell division, chromosomes must faithfully segregate to maintain genome integrity, and this dynamic mechanical process is driven by the macromolecular machinery of the mitotic spindle. However, little is known about spindle mechanics. For example, spindle microtubules are organized by numerous cross-linking proteins yet the mechanical properties of those cross-links remain unexplored. To examine the mechanical properties of microtubule cross-links we applied optical trapping to mitotic asters that form in mammalian mitotic extracts. These asters are foci of microtubules, motors, and microtubule-associated proteins that reflect many of the functional properties of spindle poles and represent centrosome-independent spindle-pole analogs. We observed bidirectional motor-driven microtubule movements, showing that microtubule linkages within asters are remarkably compliant (mean stiffness 0.025 pNm) and mediated by only a handful of cross-links. Depleting the motor Eg5 reduced this stiffness, indicating that Eg5 contributes to the mechanical properties of microtubule asters in a manner consistent with its localization to spindle poles in cells. We propose that compliant linkages among microtubules provide a mechanical architecture capable of accommodating microtubule movements and distributing force among microtubules without loss of pole integrity—a mechanical paradigm that may be important throughout the spindle.
机译:在细胞分裂过程中,染色体必须忠实地分离以维持基因组完整性,而这种动态机械过程是由有丝分裂纺锤体的大分子机械驱动的。但是,对主轴力学知之甚少。例如,纺锤体微管由许多交联蛋白组成,但这些交联的机械性能仍未得到开发。为了检查微管交联的机械性能,我们将光学捕获技术应用于哺乳动物有丝分裂提取物中形成的有丝分裂翠菊。这些紫苑是微管,马达和微管相关蛋白的焦点,这些蛋白反映纺锤体的许多功能特性,并代表与中心体无关的纺锤体类似物。我们观察到双向电机驱动的微管运动,表明翠菊内的微管连接非常顺应(平均刚度为0.025 pN / nm),并且仅由少数交联介导。耗尽电动机Eg5会降低此刚度,表明Eg5以与其定位到细胞中纺锤极的方式一致的方式有助于微管紫苑的机械性能。我们提出,微管之间的顺应性连接提供了一种能够容纳微管运动并在微管之间分配力而又不损失磁极完整性的机械体系结构-在整个锭子中可能很重要的机械范例。

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