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Cross-linkers both drive and brake cytoskeletal remodeling and furrowing in cytokinesis

机译:交联剂在细胞因子中的驱动和制动细胞骨骼重塑和沟槽

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Cell shape changes such as cytokinesis are driven by the actomyosin contractile cytoskeleton. The molecular rearrangements that bring about contractility in nonmuscle cells are currently debated. Specifically, both filament sliding by myosin motors, as well as cytoskeletal cross-linking by myosins and nonmotor cross-linkers, are thought to promote contractility. Here we examined how the abundance of motor and nonmotor cross-linkers affects the speed of cytokinetic furrowing. We built a minimal model to simulate contractile dynamics in the Caenorhabditis elegans zygote cytokinetic ring. This model predicted that intermediate levels of nonmotor cross-linkers are ideal for contractility; in vivo, intermediate levels of the scaffold protein anillin allowed maximal contraction speed. Our model also demonstrated a nonlinear relationship between the abundance of motor ensembles and contraction speed. In vivo, thorough depletion of nonmuscle myosin II delayed furrow initiation, slowed F-actin alignment, and reduced maximum contraction speed, but partial depletion allowed faster-than-expected kinetics. Thus, cytokinetic ring closure is promoted by moderate levels of both motor and nonmotor cross-linkers but attenuated by an over-abundance of motor and nonmotor cross-linkers. Together, our findings extend the growing appreciation for the roles of cross-linkers in cytokinesis and reveal that they not only drive but also brake cytoskeletal remodeling.
机译:细胞形状的诸如细胞因子的变化由Actomyosin收缩细胞骨架驱动。目前讨论了非用途细胞中的收缩性的分子重排。具体而言,肌球蛋白电动机的丝状滑动以及肌球蛋白和非运动交联剂的细胞骨架交联,被认为是促进收缩性。在这里,我们检查了电机和非运动交联剂的丰富程度如何影响细胞内容沟的速度。我们建立了一个最小的模型来模拟Caenorhabdise秀丽隐杆线虫胞虫动力学环的收缩动力学。该模型预测,非热源交联剂的中间水平是合成性的理想选择;体内,支架蛋白的中间水平允许最大收缩速度。我们的模型还展示了电机集合和收缩速度丰富之间的非线性关系。在体内,彻底消耗非气体肌蛋白II延迟沟发起,减缓F-actin对准,减少最大收缩速度,但部分耗尽允许更快的动力学速度超过预期。因此,通过电动机和非运动交联剂的中等水平促进细胞因子发动环闭合,但通过过度的电动机和非运动交联剂衰减。我们的研究结果在一起扩展了对细胞因子的交联体的作用越来越欣赏,并揭示了它们不仅可以驱动而且制动细胞骨骼改造。

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