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微管的枢转使得酿酒酵母有丝分裂纺锤体的组装成为可能。

Microtubule pivoting enables mitotic spindle assembly in S. cerevisiae.

机构信息

Department of Physiology and Biophysics, University of Washington, Seattle, WA.

Department of Biochemistry, University of Washington, Seattle, WA.

出版信息

J Cell Biol. 2021 Mar 1;220(3). doi: 10.1083/jcb.202007193.

Abstract

To assemble a bipolar spindle, microtubules emanating from two poles must bundle into an antiparallel midzone, where plus end-directed motors generate outward pushing forces to drive pole separation. Midzone cross-linkers and motors display only modest preferences for antiparallel filaments, and duplicated poles are initially tethered together, an arrangement that instead favors parallel interactions. Pivoting of microtubules around spindle poles might help overcome this geometric bias, but the intrinsic pivoting flexibility of the microtubule-pole interface has not been directly measured, nor has its importance during early spindle assembly been tested. By measuring the pivoting of microtubules around isolated yeast spindle poles, we show that pivoting flexibility can be modified by mutating a microtubule-anchoring pole component, Spc110. By engineering mutants with different flexibilities, we establish the importance of pivoting in vivo for timely pole separation. Our results suggest that passive thermal pivoting can bring microtubules from side-by-side poles into initial contact, but active minus end-directed force generation will be needed to achieve antiparallel alignment.

摘要

要组装一个双极纺锤体,必须使来自两个极的微管束集到一个反平行的中间区,在这个中间区,正端定向的马达产生向外的推力,推动两极分离。中间区的交联蛋白和马达对反平行丝仅表现出适度的偏好,而且复制的两极最初是被束缚在一起的,这种排列方式反而有利于平行相互作用。微管围绕纺锤体极的转动可能有助于克服这种几何偏差,但微管-极界面的固有转动灵活性尚未被直接测量,其在早期纺锤体组装中的重要性也尚未得到验证。通过测量分离酵母纺锤体极的微管的转动,我们发现微管锚定极组件 Spc110 的突变可以改变转动的灵活性。通过构建具有不同灵活性的突变体,我们确定了在体内转动对于及时分离两极的重要性。我们的结果表明,被动热转动可以使微管从相邻的两极进入初始接触,但需要负端定向的主动力生成才能实现反平行排列。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8dcb/7814349/014e146a2070/JCB_202007193_Fig1.jpg

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