Global View of Domain-Specific O-Linked Mannose Glycosylation in Glycoengineered Cells.

IF 6.1 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS Molecular & Cellular Proteomics Pub Date : 2024-07-01 Epub Date: 2024-06-06 DOI:10.1016/j.mcpro.2024.100796
Lorenzo Povolo, Weihua Tian, Sergey Y Vakhrushev, Adnan Halim
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Abstract

Protein O-linked mannose (O-Man) glycosylation is an evolutionary conserved posttranslational modification that fulfills important biological roles during embryonic development. Three nonredundant enzyme families, POMT1/POMT2, TMTC1-4, and TMEM260, selectively coordinate the initiation of protein O-Man glycosylation on distinct classes of transmembrane proteins, including α-dystroglycan, cadherins, and plexin receptors. However, a systematic investigation of their substrate specificities is lacking, in part due to the ubiquitous expression of O-Man glycosyltransferases in cells, which precludes analysis of pathway-specific O-Man glycosylation on a proteome-wide scale. Here, we apply a targeted workflow for membrane glycoproteomics across five human cell lines to extensively map O-Man substrates and genetically deconstruct O-Man initiation by individual and combinatorial knockout of O-Man glycosyltransferase genes. We established a human cell library for the analysis of substrate specificities of individual O-Man initiation pathways by quantitative glycoproteomics. Our results identify 180 O-Man glycoproteins, demonstrate new protein targets for the POMT1/POMT2 pathway, and show that TMTC1-4 and TMEM260 pathways widely target distinct Ig-like protein domains of plasma membrane proteins involved in cell-cell and cell-extracellular matrix interactions. The identification of O-Man on Ig-like folds adds further knowledge on the emerging concept of domain-specific O-Man glycosylation which opens for functional studies of O-Man-glycosylated adhesion molecules and receptors.

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糖工程细胞中域特异性 O 链接甘露糖基化的全貌。
蛋白质O-连接甘露糖(O-Man)糖基化是一种进化保守的翻译后修饰(PTM),在胚胎发育过程中发挥着重要的生物学作用。三个非冗余酶家族,即 POMT1/POMT2、TMTC1-4 和 TMEM260,选择性地协调不同类别跨膜蛋白上蛋白质 O-Man 糖基化的启动,这些跨膜蛋白包括 α-肌冻蛋白、粘连蛋白和 plexin 受体。然而,目前还缺乏对它们底物特异性的系统研究,部分原因是O-Man糖基转移酶在细胞中的表达无处不在,这就排除了在整个蛋白质组范围内对特异性O-Man糖基化途径的分析。在这里,我们在五种人类细胞系中应用了膜糖蛋白组学的靶向工作流程,广泛绘制了O-Man底物图,并通过单个和组合敲除(KO)O-Man糖基转移酶基因从基因上解构了O-Man启动。我们建立了一个人类细胞库,用于通过定量糖蛋白组学分析单个 O-Man 启动途径的底物特异性。我们的研究结果确定了 180 种 O-Man 糖蛋白,证明了 POMT1/POMT2 通路的新蛋白靶标,并显示 TMTC1-4 和 TMEM260 通路广泛靶向参与细胞-细胞和细胞-细胞外基质相互作用的质膜蛋白的不同 Ig 样蛋白结构域。在类Ig褶皱上鉴定O-Man进一步增加了对新出现的结构域特异性O-Man糖基化概念的了解,为O-Man糖基化粘附分子和受体的功能研究开辟了道路。
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来源期刊
Molecular & Cellular Proteomics
Molecular & Cellular Proteomics 生物-生化研究方法
CiteScore
11.50
自引率
4.30%
发文量
131
审稿时长
84 days
期刊介绍: The mission of MCP is to foster the development and applications of proteomics in both basic and translational research. MCP will publish manuscripts that report significant new biological or clinical discoveries underpinned by proteomic observations across all kingdoms of life. Manuscripts must define the biological roles played by the proteins investigated or their mechanisms of action. The journal also emphasizes articles that describe innovative new computational methods and technological advancements that will enable future discoveries. Manuscripts describing such approaches do not have to include a solution to a biological problem, but must demonstrate that the technology works as described, is reproducible and is appropriate to uncover yet unknown protein/proteome function or properties using relevant model systems or publicly available data. Scope: -Fundamental studies in biology, including integrative "omics" studies, that provide mechanistic insights -Novel experimental and computational technologies -Proteogenomic data integration and analysis that enable greater understanding of physiology and disease processes -Pathway and network analyses of signaling that focus on the roles of post-translational modifications -Studies of proteome dynamics and quality controls, and their roles in disease -Studies of evolutionary processes effecting proteome dynamics, quality and regulation -Chemical proteomics, including mechanisms of drug action -Proteomics of the immune system and antigen presentation/recognition -Microbiome proteomics, host-microbe and host-pathogen interactions, and their roles in health and disease -Clinical and translational studies of human diseases -Metabolomics to understand functional connections between genes, proteins and phenotypes
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