Glycobiology

糖生物学
  • 文章类型: Journal Article
    粘蛋白结构域糖蛋白的特征在于其高密度的糖基化丝氨酸和苏氨酸残基,这使得他们的质谱分析变得复杂。密集的糖基化使得蛋白质骨架无法接触到像胰蛋白酶这样的主力蛋白酶,糖基化的巨大异质性通常会导致未修饰肽的离子抑制,搜索算法难以自信地分析和定位O-糖位点。我们在应对这些挑战方面取得了一些进展,第一次使粘液组学成为可能。这里,我们总结了这些贡献,并提供了粘蛋白结构域糖蛋白质谱分析的详细方案。©2024Wiley期刊有限责任公司。基本方案1:粘蛋白结构域糖蛋白的富集基本方案2:粘蛋白结构域糖蛋白的酶消化基本方案3:O-糖肽的质谱数据收集基本方案4:O-糖肽的质谱数据分析。
    Mucin-domain glycoproteins are characterized by their high density of glycosylated serine and threonine residues, which complicates their analysis by mass spectrometry. The dense glycosylation renders the protein backbone inaccessible to workhorse proteases like trypsin, the vast heterogeneity of glycosylation often results in ion suppression from unmodified peptides, and search algorithms struggle to confidently analyze and site-localize O-glycosites. We have made a number of advances to address these challenges, rendering mucinomics possible for the first time. Here, we summarize these contributions and provide a detailed protocol for mass spectrometric analysis of mucin-domain glycoproteins. © 2024 Wiley Periodicals LLC. Basic Protocol 1: Enrichment of mucin-domain glycoproteins Basic Protocol 2: Enzymatic digestion of mucin-domain glycoprotein(s) Basic Protocol 3: Mass spectrometry data collection for O-glycopeptides Basic Protocol 4: Mass spectrometry data analysis of O-glycopeptides.
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  • 文章类型: Journal Article
    TMEM230促进抗原加工,贩运,并通过调节膜结合细胞器的内膜系统(溶酶体,蛋白体和线粒体)和吞噬体。免疫系统的激活需要在内膜系统和细胞质膜之间运输各种货物。高尔基体是内膜系统的枢纽,对生成至关重要,维护,回收,以及内膜系统本身和免疫系统的成分的贩运。免疫系统成分的细胞内运输和分泌取决于用于ATP合成的线粒体金属蛋白,该ATP为内膜货物的运动蛋白运输提供动力。聚糖修饰酶基因和运动蛋白对于激活免疫系统和内膜系统与质膜之间的抗原运输至关重要。最近,TMEM230被鉴定为与溶酶体中的RNASET2以及各种细胞类型和细胞器中的金属蛋白共同调节,包括自身免疫性疾病中的线粒体。在类风湿关节炎(RA)中,运动蛋白分泌异常的金属蛋白酶是滑膜组织重塑和关节组织破坏的主要原因,骨侵蚀,和软骨的吞噬细胞的损失。在这项研究中,我们发现,与骨关节炎(OA)相比,在类风湿性关节炎的破坏性组织重塑中起作用的某些细胞类型(成纤维细胞或内皮细胞)中,特定的聚糖加工酶被上调.TMEM230被确定为OA和RA中金属蛋白酶和乙酰肝素酶必需的组织重塑分泌的调节剂。在树突状(DC)中,自然杀伤和T细胞,与OA相比,TMEM230在RA中以低水平表达或不表达。DC中的TMEM230表达可能是调节性或辅助性T细胞维持对自身抗原的耐受性并防止对自身免疫性疾病的易感性所必需的。为了确定TMEM230和内膜系统如何有助于我们研究的自身免疫,聚糖修饰酶,通过分析来自RA患者来源的滑膜组织的已发表的单细胞转录组数据集来分析滑膜组织中与TMEM230共同调节或由TMEM230调节的金属蛋白酶和运动蛋白基因。
    TMEM230 promotes antigen processing, trafficking, and presentation by regulating the endomembrane system of membrane bound organelles (lysosomes, proteosomes and mitochondria) and phagosomes. Activation of the immune system requires trafficking of various cargos between the endomembrane system and cell plasma membrane. The Golgi apparatus is the hub of the endomembrane system and essential for the generation, maintenance, recycling, and trafficking of the components of the endomembrane system itself and immune system. Intracellular trafficking and secretion of immune system components depend on mitochondrial metalloproteins for ATP synthesis that powers motor protein transport of endomembrane cargo. Glycan modifying enzyme genes and motor proteins are essential for the activation of the immune system and trafficking of antigens between the endomembrane system and the plasma membrane. Recently, TMEM230 was identified as co-regulated with RNASET2 in lysosomes and with metalloproteins in various cell types and organelles, including mitochondria in autoimmune diseases. Aberrant metalloproteinase secretion by motor proteins is a major contributor to tissue remodeling of synovial membrane and joint tissue destruction in rheumatoid arthritis (RA) by promoting infiltration of blood vessels, bone erosion, and loss of cartilage by phagocytes. In this study, we identified that specific glycan processing enzymes are upregulated in certain cell types (fibroblast or endothelial cells) that function in destructive tissue remodeling in rheumatoid arthritis compared to osteoarthritis (OA). TMEM230 was identified as a regulator in the secretion of metaloproteinases and heparanase necessary tissue remodeling in OA and RA. In dendritic (DC), natural killer and T cells, TMEM230 was expressed at low or no levels in RA compared to OA. TMEM230 expression in DC likely is necessary for regulatory or helper T cells to maintain tolerance to self-antigens and prevent susceptibility to autoimmune disease. To identify how TMEM230 and the endomembrane system contribute to autoimmunity we investigated, glycan modifying enzymes, metalloproteinases and motor protein genes co-regulated with or regulated by TMEM230 in synovial tissue by analyzing published single cell transcriptomic datasets from RA patient derived synovial tissue.
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  • 文章类型: Journal Article
    胶质细胞通过分泌可溶性因子为神经元和神经组织的细胞外区室提供物理和化学支持和保护。不溶性支架,和囊泡。此外,神经胶质细胞通过重塑其物理微环境和改变其附近不同细胞类型的生理特性而具有再生能力。各种类型的异常胶质细胞和巨噬细胞与人类疾病有关,障碍,和恶性肿瘤。我们以前证明了跨膜蛋白,TMEM230通过分泌促血管生成因子和金属蛋白酶而具有组织血运重建和再生能力,诱导内皮细胞发芽和通道形成。在健康的正常神经组织中,TMEM230主要表达于神经胶质细胞和细胞中,提示在神经组织稳态中的重要作用。通过与RNASET2共表达支持TMEM230对内膜系统的调节(溶酶体,线粒体,和囊泡)和STEAP家族成员(高尔基复合体)。胶质细胞成分的细胞内运输和细胞外分泌与内吞作用有关,运动蛋白介导的胞吐和吞噬作用。贩运成分包括金属蛋白,金属蛋白酶,聚糖,和糖缀合物加工和消化酶,在吞噬体和囊泡中发挥作用,以调节正常的神经组织微环境,稳态,应激反应,以及神经组织损伤或变性后的修复。异常高持续水平TMEM230促进金属蛋白表达,运输和分泌有助于高肿瘤级别神经胶质瘤的肿瘤相关浸润和血管过度形成。中枢神经或外周系统损伤后,TMEM230超常调节的上调促进组织伤口愈合,通过激活神经胶质和巨噬细胞产生的微通道/微管(称为血管模仿)和血管发芽和分支来进行重塑和血运重建。我们的结果支持TMEM230可能充当神经胶质瘤和神经胶质增生中一大类金属蛋白的运输和区室化的运动蛋白的主要调节因子。
    Glial cells provide physical and chemical support and protection for neurons and for the extracellular compartments of neural tissue through secretion of soluble factors, insoluble scaffolds, and vesicles. Additionally, glial cells have regenerative capacity by remodeling their physical microenvironment and changing physiological properties of diverse cell types in their proximity. Various types of aberrant glial and macrophage cells are associated with human diseases, disorders, and malignancy. We previously demonstrated that transmembrane protein, TMEM230 has tissue revascularization and regenerating capacity by its ability to secrete pro-angiogenic factors and metalloproteinases, inducing endothelial cell sprouting and channel formation. In healthy normal neural tissue, TMEM230 is predominantly expressed in glial and marcophate cells, suggesting a prominent role in neural tissue homeostasis. TMEM230 regulation of the endomembrane system was supported by co-expression with RNASET2 (lysosome, mitochondria, and vesicles) and STEAP family members (Golgi complex). Intracellular trafficking and extracellular secretion of glial cellular components are associated with endocytosis, exocytosis and phagocytosis mediated by motor proteins. Trafficked components include metalloproteins, metalloproteinases, glycans, and glycoconjugate processing and digesting enzymes that function in phagosomes and vesicles to regulate normal neural tissue microenvironment, homeostasis, stress response, and repair following neural tissue injury or degeneration. Aberrantly high sustained levels TMEM230 promotes metalloprotein expression, trafficking and secretion which contribute to tumor associated infiltration and hypervascularization of high tumor grade gliomas. Following injury of the central nervous or peripheral systems, transcient regulated upregulation of TMEM230 promotes tissue wound healing, remodeling and revascularization by activating glial and macrophage generated microchannels/microtubules (referred to as vascular mimicry) and blood vessel sprouting and branching. Our results support that TMEM230 may act as a master regulator of motor protein mediated trafficking and compartmentalization of a large class of metalloproteins in gliomas and gliosis.
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  • 文章类型: Journal Article
    糖基化缺陷的中国仓鼠卵巢(CHO)细胞系在N-糖基化机制的发现中发挥了重要作用。然而,Lec5和Lec9突变体中糖基化缺陷的分子原因一直难以捉摸,即使对于这两种细胞系,以前都已建立了聚丙炔醇形成多力酚的缺陷。我们最近发现,由聚丙炔醇合成的多利康醇发生在三个步骤中,包括通过DHRSX将聚丙炔醇转化为聚丙炔醇,SRD5A3将多基因还原为dolichal,将dolichal还原为dolichol,再次由DHRSX。这导致我们研究了Lec5和Lec9细胞中缺陷的dolichol合成。两种细胞系都显示出增加的多烯醇及其衍生物水平,伴随着dolichol和衍生物水平的降低,但是多核水平没有变化,提示DHRSX缺乏。因此,通过与人DHRSX而不是SRD5A3互补来校正N-聚糖合成和聚异戊二烯水平的变化。此外,来自Lec5和Lec9细胞的膜制剂中不存在DHRSX的典型的多普瑞诺脱氢酶和dolichal还原酶活性,虽然将多基因减少为dolichal,SRD5A3催化,不受影响。Lec5和Lec9细胞的长读全基因组测序没有发现SRD5A3的ORF突变,但含有DHRSX的基因组区域不存在。最后,我们建立了中国仓鼠DHRSX的序列,并验证了该蛋白具有与人类酶相似的动力学特性。因此,我们的工作确定了CHOLec5和Lec9细胞中dolichol合成缺陷的基础。
    Glycosylation-deficient Chinese hamster ovary (CHO) cell lines have been instrumental in the discovery of N-glycosylation machinery. Yet, the molecular causes of the glycosylation defects in the Lec5 and Lec9 mutants have been elusive, even though for both cell lines a defect in dolichol formation from polyprenol was previously established. We recently found that dolichol synthesis from polyprenol occurs in three steps consisting of the conversion of polyprenol to polyprenal by DHRSX, the reduction of polyprenal to dolichal by SRD5A3 and the reduction of dolichal to dolichol, again by DHRSX. This led us to investigate defective dolichol synthesis in Lec5 and Lec9 cells. Both cell lines showed increased levels of polyprenol and its derivatives, concomitant with decreased levels of dolichol and derivatives, but no change in polyprenal levels, suggesting DHRSX deficiency. Accordingly, N-glycan synthesis and changes in polyisoprenoid levels were corrected by complementation with human DHRSX but not with SRD5A3. Furthermore, the typical polyprenol dehydrogenase and dolichal reductase activities of DHRSX were absent in membrane preparations derived from Lec5 and Lec9 cells, while the reduction of polyprenal to dolichal, catalyzed by SRD5A3, was unaffected. Long-read whole genome sequencing of Lec5 and Lec9 cells did not reveal mutations in the ORF of SRD5A3, but the genomic region containing DHRSX was absent. Lastly, we established the sequence of Chinese hamster DHRSX and validated that this protein has similar kinetic properties to the human enzyme. Our work therefore identifies the basis of the dolichol synthesis defect in CHO Lec5 and Lec9 cells.
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  • 文章类型: Journal Article
    CLEC10A是一种C型凝集素受体,可特异性标记常规树突状细胞亚群2和3(cDC2和DC3)。它具有独特的聚糖抗原识别谱,具有经常存在于肿瘤微环境中的末端N-乙酰半乳糖胺残基。尽管CLEC10A表达允许cDC2和DC3的精确靶向治疗癌症,CLEC10A信号传导还与将促进肿瘤生长的抗炎应答相关。
    这里,我们综述了CLEC10A参与肿瘤微环境的潜在利弊.我们讨论了CLEC10A在不同细胞类型中介导的作用,并结合了IL-10的多效性作用,IL-10是CLEC10A结合时的主要抗炎反应。
    为了将其转化为一种成功的CLEC10A介导的免疫疗法,其促进肿瘤的能力有限,找到正确的配体呈递和佐剂组合将是关键。
    UNASSIGNED: CLEC10A is a C-type lectin receptor that specifically marks the conventional dendritic cell subsets two and three (cDC2 and DC3). It has a unique recognition profile of glycan antigens, with terminal N-Acetylgalactosamine residues that are frequently present in the tumor microenvironment. Even though CLEC10A expression allows for precise targeting of cDC2 and DC3 for the treatment of cancer, CLEC10A signaling has also been associated with anti-inflammatory responses that would promote tumor growth.
    UNASSIGNED: Here, we review the potential benefits and drawbacks of CLEC10A engagement in the tumor microenvironment. We discuss the CLEC10A-mediated effects in different cell types and incorporate the pleiotropic effects of IL-10, the main anti-inflammatory response upon CLEC10A binding.
    UNASSIGNED: To translate this to a successful CLEC10A-mediated immunotherapy with limited tumor-promoting capacities, finding the right ligand presentation and adjuvant combination will be key.
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  • 文章类型: Journal Article
    蛋白质组的调节糖基化对癌细胞可以利用的生物过程具有广泛的影响。N-乙酰氨基葡萄糖转移酶V(由Mgat5或GnT-V编码)的表达,它催化添加β1,6-连接的N-乙酰葡糖胺以形成复杂的N-聚糖,与肿瘤的生长和转移有关。使用一组鼠胰腺导管腺癌(PDAC)克隆细胞系,概述了PDAC的免疫异质性,我们发现Mgat5是体内肿瘤生长所必需的,而不是体外肿瘤。Mgat5的缺失导致依赖于T细胞和树突状细胞的肿瘤清除,NK细胞在早期发挥作用。外源性细胞死亡途径的分析显示,缺乏Mgat5的细胞对TNF超家族介导的细胞死亡的敏感性增加,与其他非PDACMgat5缺陷细胞系共有的特性。最后,免疫疗法抗性PDAC细胞系中的Mgat5敲除显著降低了肿瘤生长并增加了免疫检查点阻断后的存活率。这些发现证明了N-糖基化在通过经典细胞死亡途径调节癌细胞对T细胞杀伤的敏感性中的作用。
    The regulated glycosylation of the proteome has widespread effects on biological processes that cancer cells can exploit. Expression of N-acetylglucosaminyltransferase V (encoded by Mgat5 or GnT-V), which catalyzes the addition of β1,6-linked N-acetylglucosamine to form complex N-glycans, has been linked to tumor growth and metastasis across tumor types. Using a panel of murine pancreatic ductal adenocarcinoma (PDAC) clonal cell lines that recapitulate the immune heterogeneity of PDAC, we found that Mgat5 is required for tumor growth in vivo but not in vitro. Loss of Mgat5 results in tumor clearance that is dependent on T cells and dendritic cells, with NK cells playing an early role. Analysis of extrinsic cell death pathways revealed Mgat5-deficient cells have increased sensitivity to cell death mediated by the TNF superfamily, a property that was shared with other non-PDAC Mgat5-deficient cell lines. Finally, Mgat5 knockout in an immunotherapy-resistant PDAC line significantly decreased tumor growth and increased survival upon immune checkpoint blockade. These findings demonstrate a role for N-glycosylation in regulating the sensitivity of cancer cells to T cell killing through classical cell death pathways.
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  • 文章类型: Journal Article
    细胞和包膜病毒的表面都涂有碳水化合物,这些碳水化合物在感染和免疫中起着多种作用。所有生命王国的生物体都利用了各种各样的单糖亚基,糖苷键,和分支模式来编码聚糖内的信息。因此,糖模式酶和聚糖结合蛋白在细胞和生物体生物学中起着不可或缺的作用,从内质网内的糖蛋白质量控制到淋巴细胞迁移,凝血,炎症,和组织稳态。毫不奇怪,参与产生和识别寡糖模式的基因是进化冲突的场所,这些冲突在跨物种相互作用中比比皆是,以作为毒素的无数植物凝集素为例。在脊椎动物中,带有酸性九碳糖的聚糖称为唾液酸是免疫反应的关键调节剂。各种细菌和真菌病原体在唾液酸中装饰它们的细胞,这些唾液酸要么模仿它们的宿主,要么从它们那里被偷走。然而,病毒如何命令宿主糖模式酶来阻止免疫反应的研究还很少。这里,我们回顾了与唾液酸结合免疫球蛋白样凝集素(Siglecs)相互作用的病毒的例子,一个调节toll样受体信号并控制糖免疫检查点的免疫细胞受体家族,同时突出了值得调查的知识差距。阐明病毒如何利用聚糖依赖的检查点的努力可能会转化为新的临床治疗方法,通过去除或掩盖免疫抑制的唾液酸聚糖来掩盖病毒抗原和受感染的细胞表面,或通过抑制诱导其生物合成的病毒基因产物。这种方法可能具有释放免疫系统以清除长期棘手的慢性病毒感染的潜力。
    The surfaces of cells and enveloped viruses alike are coated in carbohydrates that play multifarious roles in infection and immunity. Organisms across all kingdoms of life make use of a diverse set of monosaccharide subunits, glycosidic linkages, and branching patterns to encode information within glycans. Accordingly, sugar-patterning enzymes and glycan binding proteins play integral roles in cell and organismal biology, ranging from glycoprotein quality control within the endoplasmic reticulum to lymphocyte migration, coagulation, inflammation, and tissue homeostasis. Unsurprisingly, genes involved in generating and recognizing oligosaccharide patterns are playgrounds for evolutionary conflicts that abound in cross-species interactions, exemplified by the myriad plant lectins that function as toxins. In vertebrates, glycans bearing acidic nine-carbon sugars called sialic acids are key regulators of immune responses. Various bacterial and fungal pathogens adorn their cells in sialic acids that either mimic their hosts\' or are stolen from them. Yet, how viruses commandeer host sugar-patterning enzymes to thwart immune responses remains poorly studied. Here, we review examples of viruses that interact with sialic acid-binding immunoglobulin-like lectins (Siglecs), a family of immune cell receptors that regulate toll-like receptor signaling and govern glycoimmune checkpoints, while highlighting knowledge gaps that merit investigation. Efforts to illuminate how viruses leverage glycan-dependent checkpoints may translate into new clinical treatments that uncloak viral antigens and infected cell surfaces by removing or masking immunosuppressive sialoglycans, or by inhibiting viral gene products that induce their biosynthesis. Such approaches may hold the potential to unleash the immune system to clear long intractable chronic viral infections.
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  • 文章类型: Journal Article
    T细胞是在消除癌细胞方面非常有效的免疫细胞亚群。癌症免疫疗法赋予T细胞功能,并在癌症治疗中占有重要地位。响应率,然而,相对较低(<30%)。免疫疗法的功效高度依赖于T细胞浸润到肿瘤微环境(TME)中以及这些浸润的T细胞维持其在TME内的功能的能力。更好地了解TME对T细胞的抑制作用对于改善癌症免疫疗法至关重要。肿瘤细胞被很好地描述为它们转变为有氧糖酵解(Warburg效应),导致高葡萄糖消耗和代谢上不同的TME。相反,糖基化,蛋白质的主要翻译后修饰,也依赖于葡萄糖分子。T细胞受体的正确糖基化影响T细胞和肿瘤细胞之间的免疫突触,从而影响T细胞效应子功能,包括其细胞溶解和细胞抑制活性。这篇综述探讨了肿瘤葡萄糖代谢和T细胞糖萼之间复杂的相互作用。阐明TME如何诱导T细胞糖萼的改变,这随后会影响T细胞靶向和消除肿瘤细胞的能力。
    The T cell is an immune cell subset highly effective in eliminating cancer cells. Cancer immunotherapy empowers T cells and occupies a solid position in cancer treatment. The response rate, however, remains relatively low (<30%). The efficacy of immunotherapy is highly dependent on T cell infiltration into the tumor microenvironment (TME) and the ability of these infiltrated T cells to sustain their function within the TME. A better understanding of the inhibitory impact of the TME on T cells is crucial to improve cancer immunotherapy. Tumor cells are well described for their switch into aerobic glycolysis (Warburg effect), resulting in high glucose consumption and a metabolically distinct TME. Conversely, glycosylation, a predominant posttranslational modification of proteins, also relies on glucose molecules. Proper glycosylation of T cell receptors influences the immunological synapse between T cells and tumor cells, thereby affecting T cell effector functions including their cytolytic and cytostatic activities. This review delves into the complex interplay between tumor glucose metabolism and the glycocalyx of T cells, shedding light on how the TME can induce alterations in the T cell glycocalyx, which can subsequently influence the T cell\'s ability to target and eliminate tumor cells.
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  • 文章类型: Journal Article
    分泌途径中的大多数蛋白质是糖基化的,和N-聚糖估计与人类的7,000多种蛋白质连接。由于N-聚糖的结构变异关键地调节特定糖蛋白的功能,了解N-聚糖的结构多样性如何在细胞中产生是至关重要的。赋予N-聚糖结构变异的主要因素之一是可变数量的GlcNAc分支。这些分支结构是由专用的糖基转移酶生物合成的,包括GnT-III(MGAT3),GnT-IVa(MGAT4A),GnT-IVb(MGAT4B),GnT-V(MGAT5),和GnT-IX(GnT-Vb,MGAT5B)。此外,是否存在N-聚糖的核心修饰,即,核心岩藻糖(Fuc)(在本手稿中作为N-聚糖分支包含),由FUT8合成,也赋予N-聚糖大的结构变异,从而至关重要地调节许多蛋白质-蛋白质相互作用。许多生化和医学研究表明,这些分支结构涉及广泛的生理和病理过程。然而,调节生物合成糖基转移酶活性的机制尚未完全阐明。在这次审查中,我们总结了有关这些N-聚糖分支酶活性调节的先前发现和最近更新。我们希望这些信息将帮助读者对调节哺乳动物N-聚糖成熟的复杂系统进行全面概述。
    Most proteins in the secretory pathway are glycosylated, and N-glycans are estimated to be attached to over 7000 proteins in humans. As structural variation of N-glycans critically regulates the functions of a particular glycoprotein, it is pivotal to understand how structural diversity of N-glycans is generated in cells. One of the major factors conferring structural variation of N-glycans is the variable number of N-acetylglucosamine branches. These branch structures are biosynthesized by dedicated glycosyltransferases, including GnT-III (MGAT3), GnT-IVa (MGAT4A), GnT-IVb (MGAT4B), GnT-V (MGAT5), and GnT-IX (GnT-Vb, MGAT5B). In addition, the presence or absence of core modification of N-glycans, namely, core fucose (included as an N-glycan branch in this manuscript), synthesized by FUT8, also confers large structural variation on N-glycans, thereby crucially regulating many protein-protein interactions. Numerous biochemical and medical studies have revealed that these branch structures are involved in a wide range of physiological and pathological processes. However, the mechanisms regulating the activity of the biosynthetic glycosyltransferases are yet to be fully elucidated. In this review, we summarize the previous findings and recent updates regarding regulation of the activity of these N-glycan branching enzymes. We hope that such information will help readers to develop a comprehensive overview of the complex system regulating mammalian N-glycan maturation.
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  • 文章类型: Journal Article
    蛋白质O-连接的甘露糖(O-Man)糖基化是一种进化保守的翻译后修饰(PTM),其在胚胎发育过程中发挥重要的生物学作用。三个非冗余酶家族,POMT1/POMT2,TMTC1-4和TMEM260选择性地协调蛋白质O-Man糖基化在不同类型的跨膜蛋白上的起始,包括α-营养不良聚糖,钙黏着蛋白和丛蛋白受体。然而,缺乏对其底物特异性的系统研究,部分是由于O-Man糖基转移酶在细胞中的普遍表达,这排除了在蛋白质组范围内对途径特异性O-Man糖基化的分析。这里,我们在五种人类细胞系中应用了膜糖蛋白质组学的靶向工作流程,以广泛定位O-Man底物,并通过O-Man糖基转移酶基因的个体和组合敲除(KO)基因解构O-Man起始。我们建立了人类细胞文库,用于通过定量糖蛋白质组学分析单个O-Man起始途径的底物特异性。我们的结果鉴定了180个O-Man糖蛋白,证明了POMT1/POMT2途径的新蛋白质靶标,并表明TMTC1-4和TMEM260途径广泛靶向参与细胞-细胞和细胞-细胞外基质相互作用的质膜蛋白的不同Ig样蛋白质结构域。在Ig样折叠上鉴定O-Man增加了对结构域特异性O-Man糖基化的新兴概念的进一步了解,这为O-Man糖基化粘附分子和受体的功能研究打开了大门。
    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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