Combined chemical and enzymatic synthesis of a C-glycopeptide and its inhibitory activity toward glycoamidases

被引:82
作者
Wang, LX
Tang, M
Suzuki, T
Kitajima, K
Inoue, Y
Inoue, S
Fan, JQ
Lee, YC
机构
[1] JOHNS HOPKINS UNIV, DEPT BIOL, BALTIMORE, MD 21218 USA
[2] UNIV TOKYO, DEPT BIOCHEM & BIOPHYS, TOKYO 113, JAPAN
关键词
D O I
10.1021/ja9712027
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
A novel chemoenzymatic approach to synthesizing high-mannose-type N-glycopeptide and its C-linked glycopeptide analog is described. The synthesis consists of two steps: a chemical synthesis of GlcNAc-containing peptides and an enzymatic glycosyl transfer of Man(9)GlcNAc to the terminal GlcNAc in the peptides in an aqueous medium containing organic solvents. The essential enzyme used is an endo-beta-N-acetyl-glucosaminidase from Arthrobacter protophormiae (Endo-A). This approach should be generally applicable to the synthesis of both natural and designed high-mannose-type glycopeptides. It has been found that, while the natural high-mannose-type N-glycopeptide 2 can be rapidly hydrolyzed by glycoamidases [commonly called N-glycanase or, systematically, peptide-N-4-(N-acetyl-beta-D-glucosaminylasparagine amidase], the synthetic C-glycopeptide 1 with an insertion of a methylene group at the crucial asparagine-GlcNAc linkage is resistant to the enzyme-catalyzed hydrolysis and shows apparent inhibitory activity toward glycoamidases of plant, bacterial, and animal origin, with the K-i values ranging from 1 to 160 mu M for different enzymes, The C-glycopeptide 1 is the first, broad spectrum inhibitor for glycoamidases, which is expected to be a useful tool in the study of the mechanism and biological functions of the enzymes.
引用
收藏
页码:11137 / 11146
页数:10
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