Selective regulation of kinesin-5 function by β-tubulin carboxy-terminal tails.

IF 7.4 1区 生物学 Q1 CELL BIOLOGY Journal of Cell Biology Pub Date : 2025-03-03 Epub Date: 2024-12-17 DOI:10.1083/jcb.202405115
Ezekiel C Thomas, Jeffrey K Moore
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Abstract

The tubulin code hypothesis predicts that tubulin tails create programs for selective regulation of microtubule-binding proteins, including kinesin motors. However, the molecular mechanisms that determine selective regulation and their relevance in cells are poorly understood. We report selective regulation of budding yeast kinesin-5 motors by the β-tubulin tail. Cin8, but not Kip1, requires the β-tubulin tail for recruitment to the mitotic spindle, creating a balance of both motors in the spindle and efficient mitotic progression. We identify a negatively charged patch in the β-tubulin tail that mediates interaction with Cin8. Using in vitro reconstitution with genetically modified yeast tubulin, we demonstrate that the charged patch of β-tubulin tail increases Cin8 plus-end-directed velocity and processivity. Finally, we determine that the positively charged amino-terminal extension of Cin8 coordinates interactions with the β-tubulin tail. Our work identifies a molecular mechanism underlying selective regulation of closely related kinesin motors by tubulin tails and how this regulation promotes proper function of the mitotic spindle.

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β-微管蛋白羧基末端尾部对运动蛋白-5功能的选择性调控。
微管蛋白编码假说预测,微管蛋白尾部创造了选择性调节微管结合蛋白的程序,包括运动蛋白马达。然而,决定选择性调控的分子机制及其在细胞中的相关性尚不清楚。我们报道了β-微管蛋白尾部对出芽酵母驱动蛋白-5马达的选择性调控。Cin8,而不是Kip1,需要β-微管蛋白尾部募集到有丝分裂纺锤体,从而在纺锤体中创造一个马达的平衡和有效的有丝分裂进程。我们在β-微管蛋白尾部发现了一个带负电荷的补丁,介导与Cin8的相互作用。利用转基因酵母微管蛋白体外重组,我们证明β-微管蛋白尾部的带电斑块增加了Cin8 +端向速度和加工能力。最后,我们确定了带正电的Cin8氨基末端延伸与β-微管蛋白尾部的相互作用。我们的工作确定了微管蛋白尾部对密切相关的运动蛋白马达进行选择性调节的分子机制,以及这种调节如何促进有丝分裂纺锤体的正常功能。
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来源期刊
Journal of Cell Biology
Journal of Cell Biology 生物-细胞生物学
CiteScore
12.60
自引率
2.60%
发文量
213
审稿时长
1 months
期刊介绍: The Journal of Cell Biology (JCB) is a comprehensive journal dedicated to publishing original discoveries across all realms of cell biology. We invite papers presenting novel cellular or molecular advancements in various domains of basic cell biology, along with applied cell biology research in diverse systems such as immunology, neurobiology, metabolism, virology, developmental biology, and plant biology. We enthusiastically welcome submissions showcasing significant findings of interest to cell biologists, irrespective of the experimental approach.
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