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A model for the regulatory network controlling the dynamics of kinetochore microtubule plus-ends and poleward flux in metaphase

机译:调控线粒体微管正向和反向流动的调控网络模型

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摘要

Tight regulation of kinetochore microtubule dynamics is required to generate the appropriate position and movement of chromosomes on the mitotic spindle. A widely studied but mysterious aspect of this regulation occurs during metaphase when polymerization of kinetochore microtubule plus-ends is balanced by depolymerization at their minus-ends. Thus, kinetochore microtubules maintain a constant net length, allowing chromosomes to persist at the spindle equator, but consist of tubulin subunits that continually flux toward spindle poles. Here, we construct a feasible network of regulatory proteins for controlling kinetochore microtubule plus-end dynamics, which was combined with a Monte Carlo algorithm to simulate metaphase tubulin flux. We also test the network model by combining it with a force-balancing model explicitly taking force generators into account. Our data reveal how relatively simple interrelationships among proteins that stimulate microtubule plus-end polymerization, depolymerization, and dynamicity can induce robust flux while accurately predicting apparently contradictory results of knockdown experiments. The model also provides a simple and robust physical mechanism through which the regulatory networks at kinetochore microtubule plus- and minus-ends could communicate.
机译:需要严格调节线粒体微管动力学,以在有丝分裂纺锤体上产生染色体的适当位置和运动。该调节的广泛研究但神秘的方面发生在中期,动核微管正端的聚合通过负端的解聚来平衡。因此,线粒体微管保持恒定的净长度,使染色体在纺锤状赤道处持续存在,但由不断向纺锤极流动的微管蛋白亚基组成。在这里,我们构建了一个可行的调控蛋白网络,用于控制动线粒体微管的末端动力学,并与蒙特卡罗算法相结合,以模拟中期微管蛋白通量。我们还通过将网络模型与明确考虑到力生成器的力平衡模型相结合来测试网络模型。我们的数据揭示了刺激微管末端聚合,解聚和动力学的蛋白质之间相对简单的相互关系如何诱导强大的通量,同时准确预测敲低实验的明显矛盾结果。该模型还提供了一种简单而强大的物理机制,通过该机制,动粒体微管正负两端的调节网络可以进行通信。

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