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Astral microtubule dynamics regulate anaphase oscillation onset and set a robust final position of the C. elegans zygote spindle

机译:星状微管动力学调节后期振荡的发作,并设置线虫合子纺锤体的坚固的最终位置

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摘要

Background: The correct positioning of the mitotic spindle during the asymmetric division of the nematode C. elegans zygote relies on the combination of centering and cortical–pulling forces. These forces, revealed by centrosome anaphase oscillations, are regulated through the dynamics of force generators, related to mitosis progression. Recently, we reported the control of oscillation onset by the posterior spindle pole position in related species C. briggsae, necessitating a re-evaluation of the role of astral microtubules dynamics. Results: After exhibiting such a positional switch in C. elegans, we mapped the microtubule ends at the cortex and observed a correlation between the proximity of the centrosomes and the density of microtubule contacts. To explore the functional consequences, we extended the “tug–of–war” model and successfully accounted for the positional switch. We predicted and experimentally validated that the control of oscillation onset was robust to changes in cell geometry or maximum number of attached force generators. We also predicted that the final position of the posterior centrosome and thus the spindle has a reduced dependence upon the force generator dynamics or number. Conclusion: The outburst of forces responsible of spindle anaphase oscillations and positioning is regulated by the spindle position through the spatial modulation of microtubule contacts at the cortex. This regulation superimposes that of force generator processivity putatively linked to the cell cycle. This novel control provides robustness to variations in zygote geometry or detailed properties of cortical force generators.
机译:背景:线虫秀丽隐杆线虫的不对称分裂过程中,有丝分裂纺锤体的正确定位取决于定心力和皮层牵引力的组合。这些力,由中心体后期振荡揭示,通过与有丝分裂进程有关的力产生器的动力学来调节。最近,我们报道了在相关物种C. Briggsae中通过后纺锤极位置控制振荡的发生,因此有必要重新评估星状微管动力学的作用。结果:在秀丽隐杆线虫中表现出这种位置转换之后,我们将微管末端定位在皮质,并观察到了中心体的接近度与微管接触密度之间的相关性。为了探讨功能后果,我们扩展了“拔河”模型并成功地说明了位置转换。我们预测并通过实验验证,振荡开始的控制对于改变单元格几何形状或最大数量的附着力产生器具有鲁棒性。我们还预测到后中心体的最终位置,从而使纺锤对力发生器动力学或数量的依赖性降低。结论:负责纺锤后期振荡和定位的力的爆发是通过纺锤在皮层中微管接触的空间调节来调节纺锤位置的。该调节叠加了推定与细胞周期相关的力产生器的生产力。这种新颖的控制为合子的几何形状或皮层力发生器的详细特性提供了鲁棒性。

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