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TPX2 phosphorylation maintains metaphase spindle length by regulating microtubule flux

机译:TPX2磷酸化通过调节微管通量来维持中期纺锤体长度

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摘要

A steady-state metaphase spindle maintains constant length, although the microtubules undergo intensive dynamics. Tubulin dimers are incorporated at plus ends of spindle microtubules while they are removed from the minus ends, resulting in poleward movement. Such microtubule flux is regulated by the microtubule rescue factors CLASPs at kinetochores and depolymerizing protein Kif2a at the poles, along with other regulators of microtubule dynamics. How microtubule polymerization and depolymerization are coordinated remains unclear. Here we show that TPX2, a microtubule-bundling protein and activator of Aurora A, plays an important role. TPX2 was phosphorylated by Aurora A during mitosis. Its phospho-null mutant caused short metaphase spindles coupled with low microtubule flux rate. Interestingly, phosphorylation of TPX2 regulated its interaction with CLASP1 but not Kif2a. The effect of its mutant in shortening the spindle could be rescued by codepletion of CLASP1 and Kif2a that abolished microtubule flux. Together we propose that Aurora A–dependent TPX2 phosphorylation controls mitotic spindle length through regulating microtubule flux.
机译:稳态的中期纺锤体保持恒定的长度,尽管微管会经历强烈的动力学。从纺锤体微管的正端加入微管蛋白二聚体,同时从负端去除微管二聚体,导致极向运动。这种微管通量由动植物的微管拯救因子CLASPs和两极解聚蛋白Kif2a以及其他微管动力学调节器调节。微管聚合和解聚如何协调尚不清楚。在这里,我们显示TPX2,微管束蛋白和Aurora A的激活剂,起着重要的作用。 TPX2在有丝分裂过程中被Aurora A磷酸化。它的磷酸化无效突变体导致较短的中期纺锤体和低的微管通量率。有趣的是,TPX2的磷酸化调节了它与CLASP1的相互作用,但没有调节Kif2a的相互作用。其突变体缩短纺锤体的作用可以通过消除微管通量的CLASP1和Kif2a的编码来挽救。我们一起提出,Aurora A依赖的TPX2磷酸化通过调节微管通量来控制有丝分裂纺锤体的长度。

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