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CENP-E combines a slow, processive motor and a flexible coiled coil to produce an essential motile kinetochore tether

机译:CENP-E结合了慢速,步进电机和柔性线圈,可生产出基本的动能线粒体系绳

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摘要

The mitotic kinesin centromere protein E (CENP-E) is an essential kinetochore component that directly contributes to the capture and stabilization of spindle microtubules by kinetochores. Although reduction in CENP-E leads to high rates of whole chromosome missegregation, neither its properties as a microtubule-dependent motor nor how it contributes to the dynamic linkage between kinetochores and microtubules is known. Using single-molecule assays, we demonstrate that CENP-E is a very slow, highly processive motor that maintains microtubule attachment for long periods. Direct visualization of full-length Xenopus laevis CENP-E reveals a highly flexible 230-nm coiled coil separating its kinetochore-binding and motor domains. We also show that full-length CENP-E is a slow plus end–directed motor whose activity is essential for metaphase chromosome alignment. We propose that the highly processive microtubule-dependent motor activity of CENP-E serves to power chromosome congression and provides a flexible, motile tether linking kinetochores to dynamic spindle microtubules.
机译:有丝分裂驱动蛋白着丝粒蛋白E(CENP-E)是必不可少的动粒体成分,它直接有助于通过动粒体捕获和稳定纺锤体微管。尽管CENP-E的减少导致整个染色体错集的发生率很高,但既不知道其作为微管依赖性运动的特性,也不知道其如何促成动粒与微管之间的动态联系。使用单分子分析,我们证明CENP-E是一种非常缓慢的,高度加工性的电机,可长时间维持微管附着。全长非洲爪蟾CENP-E的直接可视化显示了一个高度灵活的230 nm盘绕线圈,可将其线粒体结合域和运动域分开。我们还表明,全长CENP-E是一种慢速加端向运动,其活性对于中期染色体比对至关重要。我们提出,CENP-E的高度加工性依赖微管的运动活动可为染色体大会提供动力,并提供将动植物连接到动态纺锤体微管的灵活,运动性系链。

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