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Quantitative Proteomics Reveals that the OGT Interactome Is Remodeled in Response to Oxidative Stress

机译:定量蛋白质组学显示OGT蛋白酶响应于氧化应激而改造

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摘要

The dynamic modification of specific serine and threonine residues of intracellular proteins by O-linked N-acetyl-β-D-glucosamine (O-GlcNAc) mitigates injury and promotes cytoprotection in a variety of stress models. The O-GlcNAc transferase (OGT) and the O-GlcNAcase are the sole enzymes that add and remove O-GlcNAc, respectively, from thousands of substrates. It remains unclear how just two enzymes can be specifically controlled to affect glycosylation of target proteins and signaling pathways both basally and in response to stress. Several lines of evidence suggest that protein interactors regulate these responses by affecting OGT and O-GlcNAcase activity, localization, and substrate specificity. To provide insight into the mechanisms by which OGT function is controlled, we have used quantitative proteomics to define OGT’s basal and stress-induced interactomes. OGT and its interaction partners were immunoprecipitated from OGT WT, null, and hydrogen peroxide–treated cell lysates that had been isotopically labeled with light, medium, and heavy lysine and arginine (stable isotopic labeling of amino acids in cell culture). In total, more than 130 proteins were found to interact with OGT, many of which change their association upon hydrogen peroxide stress. These proteins include the major OGT cleavage and glycosylation substrate, host cell factor 1, which demonstrated a time-dependent dissociation after stress. To validate less well-characterized interactors, such as glyceraldehyde 3-phosphate dehydrogenase and histone deacetylase 1, we turned to parallel reaction monitoring, which recapitulated our discovery-based stable isotopic labeling of amino acids in cell culture approach. Although the majority of proteins identified are novel OGT interactors, 64% of them are previously characterized glycosylation targets that contain varied domain architecture and function. Together these data demonstrate that OGT interacts with unique and specific interactors in a stress-responsive manner.
机译:通过O型N-乙酰基-β-D-葡糖胺(O-GLCNAc)通过损伤细胞内蛋白特异性丝氨酸和苏氨酸残留的动态改性,损伤和促进各种应力模型中的细胞保护。 O-GlcNAc转移酶(OGT)和O-Glcnac酶是唯一的酶,其分别从数千个基材中添加和除去o-glcnac。仍然不明确于可以特别控制两种酶以影响靶蛋白的糖基化和信号传导途径以及响应应力。几种证据表明,蛋白质交互剂通过影响OGT和O-Glcnacase活性,定位和底物特异性来调节这些反应。为了提供对控制OGT功能的机制的洞察,我们使用定量蛋白质组学来定义OGT的基础和应激诱导的杂志。 OGT及其相互作用的伴侣从OGT WT,零和过氧化氢处理的细胞裂解物中免疫沉淀,所述过氧化氢物处理的细胞裂解物与光,培养基和重质赖氨酸和精氨酸(细胞培养中氨基酸的稳定同位素标记)标记。总共发现,超过130个蛋白质与OGT相互作用,其中许多蛋白质中的许多蛋白质在过氧化氢应激上改变它们的结合。这些蛋白质包括主要OGT裂解和糖基化底物,宿主细胞因子1,其在应激后呈现时间依赖性解离。为了验证较少良好的相互作用剂,例如甘油醛3-磷酸脱氢酶和组蛋白脱乙酰酶1,我们转向平行反应监测,这重新鉴定了我们的氨基酸在细胞培养方法中的氨基酸稳定同位素标记。尽管鉴定的大多数蛋白质是新的OGT交流剂,但其中64%是先前表征含有各种域架构和功能的糖基化目标。这些数据一起表明OGT以应力响应的方式与独特和特定的互动者相互作用。

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