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嗜热栖热放线菌NRS 2004/3a表层蛋白SgsE糖基化的新见解。

New insights into the glycosylation of the surface layer protein SgsE from Geobacillus stearothermophilus NRS 2004/3a.

作者信息

Steiner Kerstin, Pohlentz Gottfried, Dreisewerd Klaus, Berkenkamp Stefan, Messner Paul, Peter-Katalinić Jasna, Schäffer Christina

机构信息

Zentrum für NanoBiotechnologie, Universität für Bodenkultur Wien, A-1180 Vienna, Austria.

出版信息

J Bacteriol. 2006 Nov;188(22):7914-21. doi: 10.1128/JB.00802-06. Epub 2006 Sep 8.

Abstract

The surface of Geobacillus stearothermophilus NRS 2004/3a cells is covered by an oblique surface layer (S-layer) composed of glycoprotein subunits. To this S-layer glycoprotein, elongated glycan chains are attached that are composed of [-->2)-alpha-l-Rhap-(1-->3)-beta-l-Rhap-(1-->2)-alpha-L-Rhap-(1-->] repeating units, with a 2-O-methyl modification of the terminal trisaccharide at the nonreducing end of the glycan chain and a core saccharide as linker to the S-layer protein. On sodium dodecyl sulfate-polyacrylamide gels, four bands appear, of which three represent glycosylated S-layer proteins. In the present study, nanoelectrospray ionization time-of-flight mass spectrometry (MS) and infrared matrix-assisted laser desorption/ionization orthogonal time-of-flight mass spectrometry were adapted for analysis of this high-molecular-mass and water-insoluble S-layer glycoprotein to refine insights into its glycosylation pattern. This is a prerequisite for artificial fine-tuning of S-layer glycans for nanobiotechnological applications. Optimized MS techniques allowed (i) determination of the average masses of three glycoprotein species to be 101.66 kDa, 108.68 kDa, and 115.73 kDa, (ii) assignment of nanoheterogeneity to the S-layer glycans, with the most prevalent variation between 12 and 18 trisaccharide repeating units, and the possibility of extension of the already-known -->3)-alpha-l-Rhap-(1-->3)-alpha-l-Rhap-(1--> core by one additional rhamnose residue, and (iii) identification of a third glycosylation site on the S-layer protein, at position threonine-590, in addition to the known sites threonine-620 and serine-794. The current interpretation of the S-layer glycoprotein banding pattern is that in the 101.66-kDa glycoprotein species only one glycosylation site is occupied, in the 108.68-kDa glycoprotein species two glycosylation sites are occupied, and in the 115.73-kDa glycoprotein species three glycosylation sites are occupied, while the 94.46-kDa band represents nonglycosylated S-layer protein.

摘要

嗜热栖热放线菌NRS 2004/3a细胞表面覆盖着一层由糖蛋白亚基组成的倾斜表面层(S层)。与该S层糖蛋白相连的是细长的聚糖链,其由[-->2)-α-L-鼠李糖-(1-->3)-β-L-鼠李糖-(1-->2)-α-L-鼠李糖-(1-->]重复单元组成,在聚糖链的非还原端,末端三糖有2-O-甲基修饰,并且有一个核心糖类作为与S层蛋白连接的接头。在十二烷基硫酸钠-聚丙烯酰胺凝胶上出现四条带,其中三条代表糖基化的S层蛋白。在本研究中,采用纳米电喷雾电离飞行时间质谱(MS)和红外基质辅助激光解吸/电离正交飞行时间质谱对这种高分子量且水不溶性的S层糖蛋白进行分析,以更深入了解其糖基化模式。这是对用于纳米生物技术应用的S层聚糖进行人工精细调控的前提条件。优化后的质谱技术能够(i)确定三种糖蛋白种类的平均质量分别为101.66 kDa、108.68 kDa和115.73 kDa,(ii)确定S层聚糖存在纳米异质性,最普遍的变化是在12至18个三糖重复单元之间,并且已知的-->3)-α-L-鼠李糖-(1-->3)-α-L-鼠李糖-(1-->核心可能会再增加一个鼠李糖残基进行延伸,以及(iii)除了已知的苏氨酸-620和丝氨酸-794位点外,在S层蛋白的苏氨酸-590位置鉴定出第三个糖基化位点。目前对S层糖蛋白条带模式的解释是,在101.66-kDa糖蛋白种类中只有一个糖基化位点被占据,在108.68-kDa糖蛋白种类中有两个糖基化位点被占据,在115.73-kDa糖蛋白种类中有三个糖基化位点被占据,而94.46-kDa条带代表非糖基化的S层蛋白。

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本文引用的文献

1
Methods in enzymology: O-glycosylation of proteins.
Methods Enzymol. 2005;405:139-71. doi: 10.1016/S0076-6879(05)05007-X.
4
Proteomic analysis of glycosylation: structural determination of N- and O-linked glycans by mass spectrometry.
Expert Rev Proteomics. 2005 Jan;2(1):87-101. doi: 10.1586/14789450.2.1.87.
5
Protein glycosylation in bacterial mucosal pathogens.
Nat Rev Microbiol. 2005 Mar;3(3):225-37. doi: 10.1038/nrmicro1100.
6
Prokaryotic glycoproteins: unexplored but important.
J Bacteriol. 2004 May;186(9):2517-9. doi: 10.1128/JB.186.9.2517-2519.2004.
9
Mass spectrometry of oligosaccharides.
Mass Spectrom Rev. 2004 May-Jun;23(3):161-227. doi: 10.1002/mas.10073.
10
Sweet new world: glycoproteins in bacterial pathogens.
Trends Microbiol. 2003 Dec;11(12):554-61. doi: 10.1016/j.tim.2003.10.004.

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