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Direct interaction between centralspindlin and PRC1 reinforces mechanical resilience of the central spindle

机译:Centralspindlin与PRC1之间的直接相互作用增强了中央主轴的机械弹性

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摘要

During animal cell division, the central spindle, an anti-parallel microtubule bundle structure formed between segregating chromosomes during anaphase, cooperates with astral microtubules to position the cleavage furrow. Because the central spindle is the only structure linking the two halves of the mitotic spindle, it is under mechanical tension from dynein-generated cortical pulling forces, which determine spindle positioning and drive chromosome segregation through spindle elongation. The central spindle should be flexible enough for efficient chromosome segregation while maintaining its structural integrity for reliable cytokinesis. How the cell balances these potentially conflicting requirements is poorly understood. Here, we demonstrate that the central spindle in C. elegans embryos has a resilient mechanism for recovery from perturbations by excess tension derived from cortical pulling forces. This mechanism involves the direct interaction of two different types of conserved microtubule bundlers that are crucial for central spindle formation, PRC1 and centralspindlin.
机译:在动物细胞分裂过程中,中心纺锤体是后期分离的染色体之间形成的反平行微管束结构,与星状微管配合以定位卵裂沟。由于中心纺锤体是连接有丝分裂纺锤体的两半的唯一结构,因此它受到动力蛋白产生的皮层拉力的机械拉伸,这决定了纺锤体的定位并通过纺锤体伸长驱动染色体分离。中心纺锤体应足够灵活,以实现有效的染色体分离,同时保持其结构完整性以实现可靠的胞质分裂。人们对电池如何平衡这些潜在冲突的要求知之甚少。在这里,我们证明秀丽隐杆线虫胚胎的中心纺锤体具有通过从皮层拉力获得的过度张力从摄动中恢复的弹性机制。该机制涉及两种对中央纺锤形成至关重要的保守微管束管的直接相互作用,PRC1和Centralspindlin。

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