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High-performance targeted mass spectrometry with precision data-independent acquisition reveals site-specific glycosylation macroheterogeneity.具有精确数据非依赖型采集的高性能靶向质谱分析揭示了位点特异性糖基化宏观异质性。
Anal Biochem. 2016 Oct 1;510:106-113. doi: 10.1016/j.ab.2016.06.009. Epub 2016 Jun 16.
2
SWATH-MS Glycoproteomics Reveals Consequences of Defects in the Glycosylation Machinery.SWATH质谱糖蛋白质组学揭示糖基化机制缺陷的后果。
Mol Cell Proteomics. 2016 Jul;15(7):2435-47. doi: 10.1074/mcp.M115.056366. Epub 2016 Apr 19.
3
Protein degradation corrects for imbalanced subunit stoichiometry in OST complex assembly.蛋白质降解可纠正寡糖基转移酶(OST)复合物组装中不平衡的亚基化学计量。
Mol Biol Cell. 2015 Jul 15;26(14):2596-608. doi: 10.1091/mbc.E15-03-0168. Epub 2015 May 20.
4
Automated measurement of site-specific N-glycosylation occupancy with SWATH-MS.采用SWATH-MS对位点特异性N-糖基化占有率进行自动化测量。
Proteomics. 2015 Jul;15(13):2177-86. doi: 10.1002/pmic.201400465. Epub 2015 May 8.
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Reproducible and consistent quantification of the Saccharomyces cerevisiae proteome by SWATH-mass spectrometry.通过SWATH质谱法对酿酒酵母蛋白质组进行可重复且一致的定量分析。
Mol Cell Proteomics. 2015 Mar;14(3):739-49. doi: 10.1074/mcp.M113.035550. Epub 2015 Jan 5.
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Ubiquitin-dependent protein degradation at the yeast endoplasmic reticulum and nuclear envelope.酵母内质网和核膜处的泛素依赖性蛋白质降解
Crit Rev Biochem Mol Biol. 2015 Jan-Feb;50(1):1-17. doi: 10.3109/10409238.2014.959889. Epub 2014 Sep 18.
7
Oligosaccharyltransferase subunits bind polypeptide substrate to locally enhance N-glycosylation.寡糖基转移酶亚基结合多肽底物以局部增强N-糖基化。
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Quantitative glycoproteomics for N-glycoproteome profiling.用于N-糖蛋白质组分析的定量糖蛋白质组学
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Structural basis of substrate specificity of human oligosaccharyl transferase subunit N33/Tusc3 and its role in regulating protein N-glycosylation.人类寡糖基转移酶亚基N33/Tusc3底物特异性的结构基础及其在调节蛋白质N-糖基化中的作用。
Structure. 2014 Apr 8;22(4):590-601. doi: 10.1016/j.str.2014.02.013. Epub 2014 Mar 27.
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Identification of salivary N-glycoproteins and measurement of glycosylation site occupancy by boronate glycoprotein enrichment and liquid chromatography/electrospray ionization tandem mass spectrometry.硼酸盐糖蛋白亲和富集和液相色谱/电喷雾串联质谱法鉴定唾液 N-糖蛋白和糖基化位点占有率。
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酵母中 N-连接糖基化机制的定量分析

Quantitative Profiling of N-linked Glycosylation Machinery in Yeast .

机构信息

From the ‡Institute of Microbiology, ETH Zurich, Vladimir-Prelog-Weg 4, CH-8093 Zurich, Switzerland.

§Functional Genomics Center Zurich, UZH/ETH Zurich, CH-8057 Zurich, Switzerland.

出版信息

Mol Cell Proteomics. 2018 Jan;17(1):18-30. doi: 10.1074/mcp.RA117.000096. Epub 2017 Oct 9.

DOI:10.1074/mcp.RA117.000096
PMID:28993419
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5750847/
Abstract

Asparagine-linked glycosylation is a common posttranslational protein modification regulating the structure, stability and function of many proteins. The -linked glycosylation machinery involves enzymes responsible for the assembly of the lipid-linked oligosaccharide (LLO), which is then transferred to the asparagine residues on the polypeptides by the enzyme oligosaccharyltransferase (OST). A major goal in the study of protein glycosylation is to establish quantitative methods for the analysis of site-specific extent of glycosylation. We developed a sensitive approach to examine glycosylation site occupancy in by coupling stable isotope labeling (SILAC) approach to parallel reaction monitoring (PRM) mass spectrometry (MS). We combined the method with genetic tools and validated the approach with the identification of novel glycosylation sites dependent on the Ost3p and Ost6p regulatory subunits of OST. Based on the observations that alternations in LLO substrate structure and OST subunits activity differentially alter the systemic output of OST, we conclude that sequon recognition is a direct property of the catalytic subunit Stt3p, auxiliary subunits such as Ost3p and Ost6p extend the OST substrate range by modulating interfering pathways such as protein folding. In addition, our proteomics approach revealed a novel regulatory network that connects isoprenoid lipid biosynthesis and LLO substrate assembly.

摘要

天冬酰胺连接的糖基化是一种常见的翻译后蛋白质修饰,调节许多蛋白质的结构、稳定性和功能。-连接的糖基化机制涉及负责组装脂连接寡糖 (LLO) 的酶,然后由寡糖基转移酶 (OST) 将其转移到多肽上的天冬酰胺残基上。蛋白质糖基化研究的主要目标是建立分析糖基化位点特异性程度的定量方法。我们通过将稳定同位素标记 (SILAC) 方法与平行反应监测 (PRM) 质谱 (MS) 相结合,开发了一种灵敏的方法来检测中的糖基化位点占有率。我们结合了遗传工具,并通过鉴定依赖 OST 的 Ost3p 和 Ost6p 调节亚基的新型糖基化位点来验证该方法。基于LLO 底物结构和 OST 亚基活性的改变会差异地改变 OST 的系统输出的观察结果,我们得出结论,识别顺式作用元件是催化亚基 Stt3p 的直接特性,辅助亚基(如 Ost3p 和 Ost6p)通过调节蛋白质折叠等干扰途径来扩展 OST 底物范围。此外,我们的蛋白质组学方法揭示了一个新的调节网络,它连接了异戊二烯脂质生物合成和 LLO 底物组装。