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半合成方法对微管蛋白的工程改造表明多聚谷氨酸化指导去酪氨酸化。

Tubulin engineering by semi-synthesis reveals that polyglutamylation directs detyrosination.

机构信息

École Polytechnique Fédérale de Lausanne (EPFL), SB ISIC LCBM, Lausanne, Switzerland.

Department of Biochemistry, University of Geneva, Geneva, Switzerland.

出版信息

Nat Chem. 2023 Aug;15(8):1179-1187. doi: 10.1038/s41557-023-01228-8. Epub 2023 Jun 29.

Abstract

Microtubules, a critical component of the cytoskeleton, carry post-translational modifications (PTMs) that are important for the regulation of key cellular processes. Long-lived microtubules, in neurons particularly, exhibit both detyrosination of α-tubulin and polyglutamylation. Dysregulation of these PTMs can result in developmental defects and neurodegeneration. Owing to a lack of tools to study the regulation and function of these PTMs, the mechanisms that govern such PTM patterns are not well understood. Here we produce fully functional tubulin carrying precisely defined PTMs within its C-terminal tail. We ligate synthetic α-tubulin tails-which are site-specifically glutamylated-to recombinant human tubulin heterodimers by applying a sortase- and intein-mediated tandem transamidation strategy. Using microtubules reconstituted with these designer tubulins, we find that α-tubulin polyglutamylation promotes its detyrosination by enhancing the activity of the tubulin tyrosine carboxypeptidase vasohibin/small vasohibin-binding protein in a manner dependent on the length of polyglutamyl chains. We also find that modulating polyglutamylation levels in cells results in corresponding changes in detyrosination, corroborating the link between the detyrosination cycle to polyglutamylation.

摘要

微管是细胞骨架的重要组成部分,携带翻译后修饰(PTMs),这些修饰对于调节关键细胞过程很重要。在神经元中,长寿命的微管既表现出α-微管蛋白的脱酪氨酸化,又表现出多聚谷氨酸化。这些 PTM 的失调可能导致发育缺陷和神经退行性变。由于缺乏研究这些 PTM 调节和功能的工具,因此,控制这些 PTM 模式的机制尚不清楚。在这里,我们在微管的 C 末端尾巴中产生了具有精确定义的 PTM 的完全功能性微管。我们通过应用一种 sortase 和内含肽介导的串联转酰胺化策略,将经位点特异性谷氨酸化的合成α-微管蛋白尾巴连接到重组人微管异二聚体上。使用这些设计的微管重新组装微管,我们发现α-微管蛋白多聚谷氨酸化通过增强微管酪氨酸羧肽酶 vasohibin/小 vasohibin 结合蛋白的活性来促进其脱酪氨酸化,这种方式依赖于多聚谷氨酸链的长度。我们还发现,在细胞中调节多聚谷氨酸化水平会导致脱酪氨酸化相应变化,这证实了脱酪氨酸化循环与多聚谷氨酸化之间的联系。

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