Arabidopsis thaliana ALG3 mutant synthesizes immature oligosaccharides in the ER and accumulates unique N-glycans

聚糖 拟南芥 突变体 拟南芥 内质网 糖基化 N-连接糖基化 未折叠蛋白反应 互补 野生型 生物化学 酿酒酵母 化学 生物 细胞生物学 糖蛋白 基因
作者
Hiroyuki Kajiura,Tokuichiro Seki,Kazuhito Fujiyama
出处
期刊:Glycobiology [Oxford University Press]
卷期号:20 (6): 736-751 被引量:48
标识
DOI:10.1093/glycob/cwq028
摘要

The core oligosaccharide Glc3Man9GlcNAc2 is assembled by a series of membrane-bound glycosyltransferases as the lipid carrier dolichylpyrophosphate-linked glycan in the endoplasmic reticulum (ER). The first step of this assembly pathway on the ER luminal side is mediated by ALG3 (asparagine-linked glycosylation 3), which is a highly conserved reaction among eukaryotic cells. Complementary genetics compared with Saccharomyces cerevisiae ALG gene families and bioinformatic approaches have enabled the identification of ALG3 from other species. In Arabidopsis thaliana, AtALG3 (At2g47760) was identified as α1,3-mannosyltransferase. Complementation analysis showed that AtALG3 rescued the temperature-sensitive phenotype, that lipid-linked oligosaccharide assemblies and that protein underglycosylation of S.cerevisiae ALG3-deficient mutant. In ArabidopsisALG3 mutant, an immature lipid-linked oligosaccharide structure, M5ER, was synthesized, and used for protein N-glycosylation, resulting in the blockade of subsequent maturation with the concanavalin A affinoactive and Endo H-insensitive structure. N-Glycan profiling of total proteins from alg3 mutants exhibited a unique structural profile, alg3 has rare N-glycan structures including Man3GlcNAc2, M4ER, M5ER and GlcM5ER, which are not usually detected in Arabidopsis, and a much less amount of complex-type N-glycan than that in wild type. Interestingly, despite protein N-glycosylation differences compared with wild type, alg3 showed no obvious phenotype under normal and high temperature or salt/osmotic stress conditions. These results indicate that AtALG3 is a critical factor for mature N-glycosylation of proteins, but not essential for cell viability and growth in Arabidopsis.

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