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刀豆α-甘露糖苷酶的N-聚糖。结构、拓扑结构与功能。

The N-glycans of jack bean alpha-mannosidase. Structure, topology and function.

作者信息

Kimura Y, Hess D, Sturm A

机构信息

Department of Bioresources Chemistry, Faculty of Agriculture, Okayama University, Japan.

出版信息

Eur J Biochem. 1999 Aug;264(1):168-75. doi: 10.1046/j.1432-1327.1999.00598.x.

Abstract

The acid hydrolase alpha-mannosidase, which accumulates in plant vacuoles and probably is involved in the catabolism and turnover of N-linked glycoproteins, is itself a glycoprotein with at least one high-mannose-type and one complex-type N-glycan. The puzzling finding that alpha-mannosidase stably carries its own substrate suggests that the N-glycans have unique topologies, and important functions in protein folding, oligomerization or enzyme activity. As a first step towards the elucidation of this enigma, we purified the N-glycans of jack bean alpha-mannosidase and determined their structures by sugar composition analysis, mass spectrometry and 1H-NMR. The structures of two N-glycans were identified in an approximate ratio of one-to-one: a glucose-containing high-mannose-type glycan (Glc1Man9GlcNAc2) and a small xylose- and fucose-containing complex-type glycan (Xyl1Man1Fuc1GlcNAc2). Isolation and sequencing of glycopeptides strongly suggests that one high-mannose-type and one complex-type glycan are linked to specific glycosylation sites of the large alpha-mannosidase subunit. The high-mannose-type glycan, which is a good substrate of the endoglycosidase (endo-H), can only be removed from the enzyme after denaturation and cleavage of disulfide bonds by a reducing agent, suggesting that this glycan is buried within the folded polypeptide and, thus, protected from its hydrolytic activity. Denaturation and reduction of the native enzyme led to a marked decrease in alpha-mannosidase activity. However, the activity could largely be recovered by renaturation in an appropriate renaturation buffer. In contrast, recovery of alpha-mannosidase activity failed when the high-mannose-type glycan was removed by endo-H prior to renaturation, indicating that this glycan appears to be important for enzyme activity.

摘要

酸性水解酶α-甘露糖苷酶积聚在植物液泡中,可能参与N-连接糖蛋白的分解代谢和周转,它本身就是一种糖蛋白,至少含有一个高甘露糖型和一个复合型N-聚糖。α-甘露糖苷酶能稳定携带自身底物这一令人费解的发现表明,N-聚糖具有独特的拓扑结构,在蛋白质折叠、寡聚化或酶活性方面具有重要功能。作为解开这一谜团的第一步,我们纯化了刀豆α-甘露糖苷酶的N-聚糖,并通过糖组成分析、质谱和1H-NMR确定了它们的结构。鉴定出两种N-聚糖的结构,其比例约为1:1:一种含葡萄糖的高甘露糖型聚糖(Glc1Man9GlcNAc2)和一种含少量木糖和岩藻糖的复合型聚糖(Xyl1Man1Fuc1GlcNAc2)。糖肽的分离和测序强烈表明,一个高甘露糖型和一个复合型聚糖与大的α-甘露糖苷酶亚基的特定糖基化位点相连。高甘露糖型聚糖是内切糖苷酶(endo-H)的良好底物,只有在变性并用还原剂裂解二硫键后才能从酶中去除,这表明该聚糖埋藏在折叠的多肽内,因此受到其水解活性的保护。天然酶的变性和还原导致α-甘露糖苷酶活性显著降低。然而,在适当的复性缓冲液中复性可使活性大部分恢复。相比之下,在复性前用endo-H去除高甘露糖型聚糖时,α-甘露糖苷酶活性无法恢复,这表明该聚糖似乎对酶活性很重要。

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