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GTP-微管蛋白帽并不是细胞中微管末端稳定性的决定因素。

The GTP-tubulin cap is not the determinant of microtubule end stability in cells.

机构信息

Department of Cell and Developmental Biology, Vanderbilt University, Nashville, TN 37205.

Department of Cell Biology, Duke University School of Medicine, Durham, NC 27710.

出版信息

Mol Biol Cell. 2024 Oct 1;35(10):br19. doi: 10.1091/mbc.E24-07-0307. Epub 2024 Sep 11.

DOI:10.1091/mbc.E24-07-0307
PMID:39259768
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11481695/
Abstract

Microtubules are dynamic cytoskeletal polymers essential for cell division, motility, and intracellular transport. Microtubule dynamics are characterized by dynamic instability-the ability of individual microtubules to switch between phases of growth and shrinkage. Dynamic instability can be explained by the GTP-cap model, suggesting that a "cap" of GTP-tubulin subunits at the growing microtubule end has a stabilizing effect, protecting against microtubule catastrophe-the switch from growth to shrinkage. Although the GTP-cap is thought to protect the growing microtubule end, whether the GTP-cap size affects microtubule stability in cells is not known. Notably, microtubule end-binding proteins, EBs, recognize the nucleotide state of tubulin and display comet-like localization at growing microtubule ends, which can be used as a proxy for the GTP-cap. Here, we employ high spatiotemporal resolution imaging to compare the relationship between EB comet size and microtubule dynamics in interphase LLC-PK1 cells to that measured in vitro. Our data reveal that the GTP-cap size in cells scales with the microtubule growth rate in the same way as in vitro. However, we find that microtubule ends in cells can withstand transition to catastrophe even after the EB comet is lost. Thus, our findings suggest that the presence of the GTP-cap is not the determinant of microtubule end stability in cells.

摘要

微管是细胞分裂、运动和细胞内运输所必需的动态细胞骨架聚合物。微管动力学的特征是动态不稳定性——单个微管在生长和收缩相之间切换的能力。动态不稳定性可以用 GTP-帽模型来解释,该模型表明,在生长的微管末端的 GTP-微管蛋白亚基“帽”具有稳定作用,防止微管解体——从生长到收缩的转变。尽管 GTP-帽被认为可以保护生长的微管末端,但 GTP-帽的大小是否会影响细胞中的微管稳定性尚不清楚。值得注意的是,微管末端结合蛋白(EBs)识别微管蛋白的核苷酸状态,并在生长的微管末端呈现出彗星样定位,可作为 GTP-帽的替代物。在这里,我们采用高时空分辨率成像技术,比较 LLC-PK1 细胞间期中 EB 彗星大小与微管动力学之间的关系,以及在体外测量的关系。我们的数据表明,细胞中的 GTP-帽大小与体外一样,与微管生长速率成正比。然而,我们发现,即使在 EB 彗星丢失后,细胞中的微管末端也可以承受向解体的转变。因此,我们的研究结果表明,GTP-帽的存在并不是细胞中微管末端稳定性的决定因素。

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