Ito Kazuo, Miyagawa Kimiko, Matsumoto Mutsumi, Yabuno Shigeki, Kawakami Naoko, Hamaguchi Tasuku, Iizuka Masaru, Minamiura Noshi
Department of Biology, Graduate School of Science, Osaka City University, 3-3-138 Sugimoto, Osaka, Japan.
Arch Biochem Biophys. 2006 Oct 1;454(1):89-99. doi: 10.1016/j.abb.2006.06.004. Epub 2006 Jun 21.
Transglycosylation activity of endo-beta-N-acetylglucosaminidase HS (Endo HS) was investigated using native human transferrin as a donor of an asparagine-linked oligosaccharide and p-nitrophenyl-beta-d-glucose (PNP-beta-d-Glc) as an acceptor of the oligosaccharide. The amount of the product increased dependent on the concentration of the acceptors. Absorption spectrum, exoglycosidase digestion and matrix assisted laser desorption and ionization-time of flight (MALDI-TOF) mass analysis of the transglycosylation product indicated that the asialobiantennary complex type oligosaccharide of human transferrin was transferred to PNP-beta-d-Glc. Endo HS also transferred the oligosaccharide of human transferrin to PNP-alpha-d-Glc, PNP-alpha-d-Gal, PNP-beta-d-Gal, PNP-beta-d-Man, PNP-beta-d-Xyl, PNP-beta-d-GlcNAc, and PNP-glycerol at a different rate. No apparent difference in the K(m) value for human transferrin as an oligosaccharide donor was observed using different acceptors, PNP-beta-d-Glc and PNP-glycerol. The amount of the transglycosylation product successively increased and became constant and then very slightly decreased during the course of enzyme reaction. Endo HS was also transferred the triantennary complex type oligosaccharide of calf fetuin and the bi-, tri-, and tetrantennary complex type oligosaccharides of human alpha(1)-acid glycoprotein to PNP-beta-d-Glc. Furthermore, Endo HS transferred an asparagine-linked oligosaccharide from a hen egg glycopeptide to PNP-beta-d-Glc. The results demonstrate that Endo HS can transfer a wide variety of asparagine-linked complex type oligosaccharides to various monosaccharides. Endo HS was distinct from other enzymes in the specificity for oligosaccharide donors and acceptors.
以内切β-N-乙酰氨基葡萄糖苷酶HS(Endo HS)的转糖基化活性为研究对象,使用天然人转铁蛋白作为天冬酰胺连接寡糖的供体,对硝基苯基-β-D-葡萄糖(PNP-β-D-Glc)作为寡糖的受体。产物量随受体浓度增加而增加。转糖基化产物的吸收光谱、外切糖苷酶消化以及基质辅助激光解吸电离飞行时间(MALDI-TOF)质谱分析表明,人转铁蛋白的去唾液酸双天线复合型寡糖被转移到了PNP-β-D-Glc上。Endo HS还以不同速率将人转铁蛋白的寡糖转移到PNP-α-D-Glc、PNP-α-D-Gal、PNP-β-D-Gal、PNP-β-D-Man、PNP-β-D-Xyl、PNP-β-D-GlcNAc和PNP-甘油上。使用不同受体PNP-β-D-Glc和PNP-甘油时,未观察到人转铁蛋白作为寡糖供体的K(m)值有明显差异。在酶反应过程中,转糖基化产物量先持续增加,然后保持恒定,随后略有下降。Endo HS还将小牛胎球蛋白的三天线复合型寡糖以及人α(1)-酸性糖蛋白的双、三、四天线复合型寡糖转移到PNP-β-D-Glc上。此外,Endo HS将来自鸡蛋糖肽的天冬酰胺连接寡糖转移到PNP-β-D-Glc上。结果表明,Endo HS可以将多种天冬酰胺连接的复合型寡糖转移到各种单糖上。Endo HS在寡糖供体和受体的特异性方面与其他酶不同。