β3通过发散的横向界面加速微管加端成熟。

IF 3.1 3区 生物学 Q3 CELL BIOLOGY
Lisa M Wood, Jeffrey K Moore
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引用次数: 0

摘要

β-微管蛋白同型具有相似的序列但不同的活性,表明有限的序列差异在功能上是重要的。我们对TUBB3/β3(一种与人类侵袭性癌症和化疗耐药相关的β-微管蛋白)的这一假设进行了研究。我们创造了具有β-微管蛋白等位基因的突变酵母菌株,模仿β3中的变异残基,并发现侧向界面上的残基足以改变微管动力学和对微管靶向药物的反应。在HeLa细胞中,β3过表达降低了微管生长的寿命,这需要在侧界面残基。这些微管在正端显示出更短的EB结合区域,表明晶格成熟更快,并且抵抗紫杉醇的稳定。阻力需要β3侧界面的H1-S2和H2-S3区域。我们的研究结果确定了β3微管蛋白独特活性的机制起源,并表明微管蛋白同型表达可能调节细胞中生长的微管+端晶格成熟的速度。[媒体:见文本][媒体:见文本][媒体:见文本][媒体:见文本][媒体:见文本][媒体:见文本][媒体:见文本]。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
β3 accelerates microtubule plus end maturation through a divergent lateral interface.

β-tubulin isotypes exhibit similar sequences but different activities, suggesting that limited sequence divergence is functionally important. We investigated this hypothesis for TUBB3/β3, a β-tubulin linked to aggressive cancers and chemoresistance in humans. We created mutant yeast strains with β-tubulin alleles that mimic variant residues in β3 and find that residues at the lateral interface are sufficient to alter microtubule dynamics and response to microtubule targeting agents. In HeLa cells, β3 overexpression decreases the lifetime of microtubule growth, and this requires residues at the lateral interface. These microtubules exhibit a shorter region of EB binding at the plus end, suggesting faster lattice maturation, and resist stabilization by paclitaxel. Resistance requires the H1-S2 and H2-S3 regions at the lateral interface of β3. Our results identify the mechanistic origins of the unique activity of β3 tubulin and suggest that tubulin isotype expression may tune the rate of lattice maturation at growing microtubule plus ends in cells. [Media: see text] [Media: see text] [Media: see text] [Media: see text] [Media: see text] [Media: see text].

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来源期刊
Molecular Biology of the Cell
Molecular Biology of the Cell 生物-细胞生物学
CiteScore
6.00
自引率
6.10%
发文量
402
审稿时长
2 months
期刊介绍: MBoC publishes research articles that present conceptual advances of broad interest and significance within all areas of cell, molecular, and developmental biology. We welcome manuscripts that describe advances with applications across topics including but not limited to: cell growth and division; nuclear and cytoskeletal processes; membrane trafficking and autophagy; organelle biology; quantitative cell biology; physical cell biology and mechanobiology; cell signaling; stem cell biology and development; cancer biology; cellular immunology and microbial pathogenesis; cellular neurobiology; prokaryotic cell biology; and cell biology of disease.
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