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微管反馈和 LET-99 依赖性的拉力控制确保纺锤体位置的稳健性。

Microtubule Feedback and LET-99-Dependent Control of Pulling Forces Ensure Robust Spindle Position.

机构信息

CNRS, Univ Rennes, IGDR - UMR 6290, F-35000 Rennes, France.

CNRS, Univ Rennes, IGDR - UMR 6290, F-35000 Rennes, France.

出版信息

Biophys J. 2018 Dec 4;115(11):2189-2205. doi: 10.1016/j.bpj.2018.10.010. Epub 2018 Oct 19.

Abstract

During asymmetric division of the Caenorhabditis elegans zygote, to properly distribute cell fate determinants, the mitotic spindle is asymmetrically localized by a combination of centering and cortical-pulling microtubule-mediated forces, the dynamics of the latter being regulated by mitotic progression. Here, we show a, to our knowledge, novel and additional regulation of these forces by spindle position itself. For that, we observed the onset of transverse spindle oscillations, which reflects the burst of anaphase pulling forces. After delaying anaphase onset, we found that the position at which the spindle starts to oscillate was unchanged compared to control embryos and uncorrelated to anaphase onset. In mapping the cortical microtubule dynamics, we measured a steep increase in microtubule contact density after the posterior centrosome reached the critical position of 70% of embryo length, strongly suggesting the presence of a positional switch for spindle oscillations. Expanding a previous model based on a force-generator temporal control, we implemented this positional switch and observed that the large increase in microtubule density accounted for the pulling force burst. Thus, we propose that the spindle position influences the cortical availability of microtubules on which the active force generators, controlled by cell cycle progression, can pull. Importantly, we found that this positional control relies on the polarity-dependent LET-99 cortical band, the boundary of which could be probed by microtubules. This dual positional and temporal control well accounted for our observation that the oscillation onset position resists changes in cellular geometry and moderate variations in the active force generator number. Finally, our model suggests that spindle position at mitosis end is more sensitive to the polarity factor LET-99, which restricts the region of active force generators to a posterior-most region, than to microtubule number or force generator number/activity. Overall, we show that robustness in spindle positioning originates in cell mechanics rather than biochemical networks.

摘要

在秀丽隐杆线虫合子的不对称分裂过程中,为了正确分配细胞命运决定因素,有丝分裂纺锤体通过中心体定位和皮层牵拉微管介导的力的结合而不对称定位,后者的动力学受有丝分裂进程的调节。在这里,我们展示了一种我们所知的新颖的、额外的调节这些力的机制,即纺锤体位置本身。为此,我们观察到横向纺锤体振荡的开始,这反映了后期牵拉力的爆发。在延迟后期起始后,我们发现纺锤体开始振荡的位置与对照胚胎相比没有变化,与后期起始也没有相关性。在绘制皮层微管动力学图时,我们发现,在后中心体到达胚胎长度的 70%的临界位置后,微管接触密度急剧增加,这强烈表明纺锤体振荡存在位置开关。在扩展之前基于力发生器时间控制的模型的基础上,我们实现了这个位置开关,并观察到微管密度的大幅增加解释了牵拉力的爆发。因此,我们提出纺锤体位置影响了有丝分裂中微管的皮层可用性,活性力发生器通过细胞周期进程控制,可以牵拉微管。重要的是,我们发现这种位置控制依赖于极性依赖性 LET-99 皮层带,其边界可以通过微管来探测。这种位置和时间的双重控制很好地解释了我们的观察结果,即振荡起始位置抵抗细胞几何形状的变化和活性力发生器数量的适度变化。最后,我们的模型表明,有丝分裂末期纺锤体的位置对极性因子 LET-99 更为敏感,这将活性力发生器的区域限制在后最前区域,而不是微管数量或力发生器数量/活性。总的来说,我们表明,纺锤体定位的稳健性源自于细胞力学,而不是生化网络。

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