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本文引用的文献

1
Scaffold proteins: hubs for controlling the flow of cellular information.支架蛋白:控制细胞信息流的枢纽。
Science. 2011 May 6;332(6030):680-6. doi: 10.1126/science.1198701.
2
A testis-specific regulator of complex and hybrid N-glycan synthesis.一个睾丸特异性调控物,调控复杂和混合 N-聚糖合成。
J Cell Biol. 2010 Sep 6;190(5):893-910. doi: 10.1083/jcb.201004102. Epub 2010 Aug 30.
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Characterizing the interaction between the Rab6 GTPase and Mint3 via flow cytometry based FRET analysis.通过基于荧光共振能量转移(FRET)分析的流式细胞术来描绘 Rab6 GTPase 和 Mint3 之间的相互作用。
Biochem Biophys Res Commun. 2010 Jun 4;396(3):679-83. doi: 10.1016/j.bbrc.2010.04.161. Epub 2010 May 4.
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Golgi N-glycosyltransferases form both homo- and heterodimeric enzyme complexes in live cells.高尔基 N-糖基转移酶在活细胞中形成同型和异型酶复合物。
J Biol Chem. 2010 Jun 4;285(23):17771-7. doi: 10.1074/jbc.M110.103184. Epub 2010 Apr 8.
5
A flow cytometry-based FRET assay to identify and analyse protein-protein interactions in living cells.基于流式细胞术的 FRET 测定法,用于鉴定和分析活细胞中的蛋白质-蛋白质相互作用。
PLoS One. 2010 Feb 22;5(2):e9344. doi: 10.1371/journal.pone.0009344.
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Sorting out glycosylation enzymes in the Golgi apparatus.梳理高尔基体中的糖基化酶
FEBS Lett. 2009 Dec 3;583(23):3764-9. doi: 10.1016/j.febslet.2009.10.064. Epub 2009 Oct 28.
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N-linked deglycosylated melanopsin retains its responsiveness to light.N-连接去糖基化的黑视蛋白保留了其对光的反应性。
Biochemistry. 2009 Jun 16;48(23):5142-8. doi: 10.1021/bi900249n.
8
Elevated Golgi pH impairs terminal N-glycosylation by inducing mislocalization of Golgi glycosyltransferases.高尔基体pH值升高通过诱导高尔基体糖基转移酶的错误定位来损害末端N-糖基化。
J Cell Physiol. 2009 Jul;220(1):144-54. doi: 10.1002/jcp.21744.
9
High-efficiency labeling of sialylated glycoproteins on living cells.活细胞上唾液酸化糖蛋白的高效标记
Nat Methods. 2009 Mar;6(3):207-9. doi: 10.1038/nmeth.1305. Epub 2009 Feb 22.
10
N-Glycans in cancer progression.癌症进展中的N-聚糖
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高尔基体 N-和 O-糖基化途径的功能组织涉及 pH 依赖性的复合物形成,而这种复合物在癌细胞中受到损害。

Functional organization of Golgi N- and O-glycosylation pathways involves pH-dependent complex formation that is impaired in cancer cells.

机构信息

Department of Biochemistry and the Finnish Glycoscience Graduate School, University of Oulu, FIN-90014 Oulu, Finland.

Department of Biochemistry and the Finnish Glycoscience Graduate School, University of Oulu, FIN-90014 Oulu, Finland.

出版信息

J Biol Chem. 2011 Nov 4;286(44):38329-38340. doi: 10.1074/jbc.M111.277681. Epub 2011 Sep 12.

DOI:10.1074/jbc.M111.277681
PMID:21911486
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3207439/
Abstract

Glycosylation is one of the most common modifications of proteins and lipids and also a major source of biological diversity in eukaryotes. It is critical for many basic cellular functions and recognition events that range from protein folding to cell signaling, immunological defense, and the development of multicellular organisms. Glycosylation takes place mainly in the endoplasmic reticulum and Golgi apparatus and involves dozens of functionally distinct glycosidases and glycosyltransferases. How the functions of these enzymes, which act sequentially and often competitively, are coordinated to faithfully synthesize a vast array of different glycan structures is currently unclear. Here, we investigate the supramolecular organization of the Golgi N- and O-glycosylation pathways in live cells using a FRET flow cytometric quantification approach. We show that the enzymes form enzymatically active homo- and/or heteromeric complexes within each pathway. However, no complexes composed of enzymes that operate in different pathways, were detected, which suggests that the pathways are physically distinct. In addition, we show that complex formation is mediated almost exclusively by the catalytic domains of the interacting enzymes. Our data also suggest that the heteromeric complexes are functionally more important than enzyme homomers. Heteromeric complex formation was found to be dependent on Golgi acidity, markedly impaired in acidification-defective cancer cells, and required for the efficient synthesis of cell surface glycans. Collectively, the results emphasize that the Golgi glycosylation pathways are functionally organized into complexes that are important for glycan synthesis.

摘要

糖基化是蛋白质和脂质最常见的修饰之一,也是真核生物中生物多样性的主要来源。它对许多基本的细胞功能和识别事件至关重要,这些功能和事件从蛋白质折叠到细胞信号转导、免疫防御和多细胞生物的发育。糖基化主要发生在内质网和高尔基体中,涉及数十种功能不同的糖苷酶和糖基转移酶。这些酶的功能如何协调,以准确地合成大量不同的聚糖结构,目前还不清楚。在这里,我们使用 FRET 流式细胞术定量方法研究了活细胞中高尔基体 N-和 O-糖基化途径的超分子组织。我们表明,这些酶在每条途径内形成具有酶活性的同型和/或异型寡聚体复合物。然而,没有检测到在不同途径中起作用的酶组成的复合物,这表明途径是物理上不同的。此外,我们表明,复合物的形成几乎完全是由相互作用酶的催化结构域介导的。我们的数据还表明,异型寡聚体复合物比酶同型单体具有更重要的功能。发现异型寡聚体复合物的形成依赖于高尔基体的酸度,在酸化缺陷型癌细胞中明显受损,并且对于细胞表面聚糖的有效合成是必需的。总的来说,这些结果强调了高尔基体糖基化途径是功能性组织成复合物的,这对于聚糖合成很重要。