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利用深度定量糖谱分析(DQGlyco)揭示蛋白质糖基化动力学和异质性。

Uncovering protein glycosylation dynamics and heterogeneity using deep quantitative glycoprofiling (DQGlyco).

作者信息

Potel Clément M, Burtscher Mira Lea, Garrido-Rodriguez Martin, Brauer-Nikonow Amber, Becher Isabelle, Le Sueur Cecile, Typas Athanasios, Zimmermann Michael, Savitski Mikhail M

机构信息

Genome Biology Unit, European Molecular Biology Laboratory, Heidelberg, Germany.

Faculty of Biosciences, Heidelberg University, Heidelberg, Germany.

出版信息

Nat Struct Mol Biol. 2025 Feb 10. doi: 10.1038/s41594-025-01485-w.

Abstract

Protein glycosylation regulates essential cellular processes such as signaling, adhesion and cell-cell interactions; however, dysregulated glycosylation is associated with diseases such as cancer. Here we introduce deep quantitative glycoprofiling (DQGlyco), a robust method that integrates high-throughput sample preparation, highly sensitive detection and precise multiplexed quantification to investigate protein glycosylation dynamics at an unprecedented depth. Using DQGlyco, we profiled the mouse brain glycoproteome, identifying 177,198 unique N-glycopeptides-25 times more than previous studies. We quantified glycopeptide changes in human cells treated with a fucosylation inhibitor and characterized surface-exposed glycoforms. Furthermore, we analyzed tissue-specific glycosylation patterns in mice and demonstrated that a defined gut microbiota substantially remodels the mouse brain glycoproteome, shedding light on the link between the gut microbiome and brain protein functions. Additionally, we developed a novel strategy to evaluate glycoform solubility, offering new insights into their biophysical properties. Overall, the in-depth profiling offered by DQGlyco uncovered extensive complexity in glycosylation regulation.

摘要

蛋白质糖基化调节着诸如信号传导、黏附以及细胞间相互作用等重要的细胞过程;然而,糖基化失调与癌症等疾病相关。在此,我们介绍深度定量糖谱分析(DQGlyco),这是一种强大的方法,它整合了高通量样品制备、高灵敏度检测和精确的多重定量,以前所未有的深度研究蛋白质糖基化动力学。使用 DQGlyco,我们对小鼠脑糖蛋白组进行了分析,鉴定出 177,198 种独特的 N - 糖肽——比之前的研究多 25 倍。我们对用岩藻糖基化抑制剂处理的人类细胞中的糖肽变化进行了定量,并对表面暴露的糖型进行了表征。此外,我们分析了小鼠组织特异性糖基化模式,并证明特定的肠道微生物群会显著重塑小鼠脑糖蛋白组,为肠道微生物群与脑蛋白功能之间的联系提供了线索。此外,我们开发了一种评估糖型溶解度的新策略,为其生物物理性质提供了新的见解。总体而言,DQGlyco 提供的深度分析揭示了糖基化调控中广泛的复杂性。

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