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Physical determinants of bipolar mitotic spindle assembly and stability in fission yeast

机译:双极有丝分裂纺锤体组装的物理决定因素和裂变酵母的稳定性

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摘要

Mitotic spindles use an elegant bipolar architecture to segregate duplicated chromosomes with high fidelity. Bipolar spindles form from a monopolar initial condition; this is the most fundamental construction problem that the spindle must solve. Microtubules, motors, and cross-linkers are important for bipolarity, but the mechanisms necessary and sufficient for spindle assembly remain unknown. We describe a physical model that exhibits de novo bipolar spindle formation. We began with physical properties of fission-yeast spindle pole body size and microtubule number, kinesin-5 motors, kinesin-14 motors, and passive cross-linkers. Our model results agree quantitatively with our experiments in fission yeast, thereby establishing a minimal system with which to interrogate collective self-assembly. By varying the features of our model, we identify a set of functions essential for the generation and stability of spindle bipolarity. When kinesin-5 motors are present, their bidirectionality is essential, but spindles can form in the presence of passive cross-linkers alone. We also identify characteristic failed states of spindle assembly—the persistent monopole, X spindle, separated asters, and short spindle, which are avoided by the creation and maintenance of antiparallel microtubule overlaps. Our model can guide the identification of new, multifaceted strategies to induce mitotic catastrophes; these would constitute novel strategies for cancer chemotherapy.
机译:有丝分裂纺锤体使用优雅的双极结构以高保真度分离重复的染色体。双极纺锤体由单极初始状态形成。这是主轴必须解决的最基本的结构问题。微管,电机和交联剂对于双极性很重要,但是主轴组装所需的充分机制仍然未知。我们描述了一个物理模型,展现了从头开始的双极纺锤体形成。我们从裂变酵母纺锤体的本体尺寸和微管数量,驱动蛋白5电机,驱动蛋白14电机和无源交联剂的物理性质开始。我们的模型结果与我们在裂殖酵母中的实验定量地吻合,从而建立了一个用于询问集体自组装的最小系统。通过改变模型的特征,我们确定了对于主轴双极性的产生和稳定性必不可少的一组功能。当存在kinesin-5电动机时,它们的双向性至关重要,但是仅在存在无源交联剂的情况下才能形成纺锤。我们还确定了主轴组件的典型故障状态-永久性单极子,X主轴,分离的星号和短主轴,可以通过创建和维护反平行微管重叠来避免这些状态。我们的模型可以指导识别导致有丝分裂灾难的新的,多方面的策略;这些将构成癌症化学疗法的新策略。

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