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核有丝分裂装置蛋白(NuMA)独立于其伴侣动力蛋白,以机械方式强化纺锤体。

NuMA mechanically reinforces the spindle independently of its partner dynein.

作者信息

Cho Nathan H, Aslan Merve, Yildiz Ahmet, Dumont Sophie

机构信息

Department of Bioengineering & Therapeutic Sciences, University of California San Francisco, San Francisco, CA, USA.

Tetrad Graduate Program, University of California San Francisco, San Francisco, CA, USA.

出版信息

bioRxiv. 2024 Dec 1:2024.11.29.622360. doi: 10.1101/2024.11.29.622360.

Abstract

Both motor and non-motor proteins organize microtubules to build the spindle and maintain it against opposing forces. NuMA, a long microtubule binding protein, is essential to spindle structure and function. NuMA recruits the motor dynein to spindle microtubule minus-ends to actively cluster them, but whether NuMA performs other spindle roles remains unknown. Here, we show that NuMA acts independently of dynein to passively reinforce the mammalian spindle. NuMA that cannot bind dynein is sufficient to protect spindle poles against fracture under external force. In contrast, NuMA with a shorter coiled-coil or disrupted self-interactions cannot protect spindle poles, and NuMA turnover differences cannot explain mechanical differences. , NuMA's C-terminus self-interacts and bundles microtubules without dynein, dependent on residues essential to pole protection . Together, this suggests that NuMA reinforces spindle poles by crosslinking microtubules, using its long coiled-coiled and self-interactions to reach multiple, far-reaching pole microtubules. We propose that NuMA acts as a mechanical "multitasker" targeting contractile motor activity and separately crosslinking microtubules, both functions synergizing to drive spindle mechanical robustness.

摘要

运动蛋白和非运动蛋白都会组织微管来构建纺锤体,并抵抗相反的力量来维持纺锤体的结构。核有丝分裂器蛋白(NuMA)是一种长微管结合蛋白,对纺锤体的结构和功能至关重要。NuMA将动力蛋白驱动蛋白招募到纺锤体微管的负端,使其主动聚集,但NuMA是否发挥其他纺锤体作用仍不清楚。在这里,我们表明NuMA独立于驱动蛋白发挥作用,以被动增强哺乳动物纺锤体。无法结合驱动蛋白的NuMA足以保护纺锤体两极在外力作用下不发生断裂。相比之下,具有较短卷曲螺旋或自我相互作用被破坏的NuMA无法保护纺锤体两极,并且NuMA周转差异无法解释机械差异。此外,NuMA的C端自我相互作用并在没有驱动蛋白的情况下捆绑微管,这取决于对纺锤体两极保护至关重要的残基。总之,这表明NuMA通过交联微管来增强纺锤体两极,利用其长卷曲螺旋和自我相互作用来连接多个延伸至远处的两极微管。我们提出,NuMA作为一种机械“多面手”,既能靶向收缩性运动蛋白的活性,又能分别交联微管,这两种功能协同作用以驱动纺锤体的机械稳健性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0079/12309564/4cf556857428/nihpp-2024.11.29.622360v1-f0001.jpg

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