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Spatial Regulation Improves Antiparallel Microtubule Overlap during Mitotic Spindle Assembly

机译:空间调节改善有丝分裂纺锤体组装过程中的反平行微管重叠。

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摘要

The mitotic spindle plays an essential role in chromosome segregation during cell division. Spindle formation and proper function require that microtubules with opposite polarity overlap and interact. Previous computational simulations have demonstrated that these antiparallel interactions could be created by complexes combining plus- and minus-end-directed motors. The resulting spindles, however, exhibit sparse antiparallel microtubule overlap with motor complexes linking only a nominal number of antiparallel microtubules. Here we investigate the role that spatial differences in the regulation of microtubule interactions can have on spindle morphology. We show that the spatial regulation of microtubule catastrophe parameters can lead to significantly better spindle morphology and spindles with greater antiparallel MT overlap. We also demonstrate that antiparallel microtubule overlap can be increased by having new microtubules nucleated along the length of existing astral microtubules, but this increase negatively affects spindle morphology. Finally, we show that limiting the diffusion of motor complexes within the spindle region increases antiparallel microtubule interaction.
机译:在细胞分裂过程中,有丝分裂纺锤体在染色体分离中起着至关重要的作用。纺锤体的形成和适当的功能要求极性相反的微管重叠并相互作用。先前的计算仿真表明,可以通过组合正负电机驱动的复合体来创建这些反平行相互作用。然而,所得纺锤体表现出稀疏的反平行微管与仅连接标称数量的反平行微管的运动复合物重叠。在这里,我们研究微管相互作用调节中空间差异对纺锤体形态的作用。我们表明,微管突变参数的空间调节可以导致明显更好的纺锤形态和纺锤具有较大的反平行MT重叠。我们还证明,通过沿现有星状微管的长度成核的新微管,可以增加反平行微管的重叠,但是这种增加会对纺锤体形态产生负面影响。最后,我们表明限制运动复合物在纺锤体区域内的扩散会增加反平行微管的相互作用。

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