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波形蛋白 Cys328 的 S-谷胱甘肽化抑制了体外成熟丝的延伸并诱导其断裂。

Vimentin S-glutathionylation at Cys328 inhibits filament elongation and induces severing of mature filaments in vitro.

机构信息

Laboratory of Mass Spectrometry, Institute of Biochemistry and Biophysics, Polish Academy of Sciences, Warsaw, Poland.

Biophysics of Macromolecules, German Cancer Research Center (DKFZ), Heidelberg, Germany.

出版信息

FEBS J. 2020 Dec;287(24):5304-5322. doi: 10.1111/febs.15321. Epub 2020 Apr 21.

Abstract

Vimentin intermediate filaments are a significant component of the cytoskeleton in cells of mesenchymal origin. In vivo, filaments assemble and disassemble and thus participate in the dynamic processes of the cell. Post-translational modifications (PTMs) such as protein phosphorylation regulate the multiphasic association of vimentin from soluble complexes to insoluble filaments and the reverse processes. The thiol side chain of the single vimentin cysteine at position 328 (Cys328) is a direct target of oxidative modifications inside cells. Here, we used atomic force microscopy, electron microscopy and a novel hydrogen-deuterium exchange mass spectrometry (HDex-MS) procedure to investigate the structural consequences of S-nitrosylation and S-glutathionylation of Cys328 for in vitro oligomerisation of human vimentin. Neither modification affects the lateral association of tetramers to unit-length filaments (ULF). However, S-glutathionylation of Cys328 blocks the longitudinal assembly of ULF into extended filaments. S-nitrosylation of Cys328 does not hinder but slows down the elongation. Likewise, S-glutathionylation of preformed vimentin filaments causes their extensive fragmentation to smaller oligomeric species. Chemical reduction of the S-glutathionylated Cys328 thiols induces reassembly of the small fragments into extended filaments. In conclusion, our in vitro results suggest S-glutathionylation as a candidate PTM for an efficient molecular switch in the dynamic rearrangements of vimentin intermediate filaments, observed in vivo, in response to changes in cellular redox status. Finally, we demonstrate that HDex-MS is a powerful method for probing the kinetics of vimentin filament formation and filament disassembly induced by PTMs.

摘要

波形蛋白中间丝是间充质来源细胞骨架的重要组成部分。在体内,丝组装和解组装,从而参与细胞的动态过程。翻译后修饰(PTMs)如蛋白质磷酸化调节波形蛋白的多相结合,从可溶性复合物到不溶性丝和反向过程。位置 328 处的单个波形蛋白半胱氨酸(Cys328)的巯基侧链是细胞内氧化修饰的直接靶标。在这里,我们使用原子力显微镜、电子显微镜和一种新的氢氘交换质谱(HDex-MS)程序来研究 Cys328 的 S-亚硝化和 S-谷胱甘肽化对人波形蛋白体外寡聚化的结构后果。这两种修饰都不影响四聚体到单位长度丝(ULF)的侧向结合。然而,Cys328 的 S-谷胱甘肽化阻止了 ULF 的纵向组装成延伸丝。Cys328 的 S-亚硝化不会阻碍但会减慢伸长速度。同样,预先形成的波形蛋白丝的 S-谷胱甘肽化会导致其广泛碎片化成较小的寡聚体。化学还原 S-谷胱甘肽化的 Cys328 硫醇会诱导小片段重新组装成延伸丝。总之,我们的体外结果表明 S-谷胱甘肽化是一种候选 PTM,用于在细胞氧化还原状态变化时观察到的体内波形蛋白中间丝动态重排的有效分子开关。最后,我们证明了 HDex-MS 是一种强大的方法,用于探测 PTM 诱导的波形蛋白丝形成和丝解组装的动力学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1d2f/7818121/9946d97237c0/FEBS-287-5304-g001.jpg

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