Processing of N-linked glycans during endoplasmic-reticulum-associated degradation of a short-lived variant of ribophorin I

被引:46
作者
Kitzmüller, C
Caprini, A
Moore, SEH
Frénoy, JP
Schwaiger, E
Kellermann, O
Ivessa, NE
Ermonval, M
机构
[1] Univ Vienna, Dept Mol Genet, Max F Perutz Labs, Univ Dept Vienna Bioctr, A-1030 Vienna, Austria
[2] Univ Vienna, Dept Mol Genet, Max F Perutz Labs, Inst Med Biochem, A-1030 Vienna, Austria
[3] CNRS, Inst Andre Lwoff Differenciat Cellulaire & Prions, Unite Propre Rech 1983, F-94800 Villejuif, France
[4] INSERM, Unite 504, Inst Andre Lwoff Glycobiol & Signalisat Cellulair, F-94800 Villejuif, France
[5] Inst Pasteur, Dept Biol Cellulaire & Infect, F-75724 Paris 15, France
关键词
alpha 1,2-mannosidase; endoplasmic reticulum-associated; degradation (ERAD); N-glycan; oligomannoside structure; peptide N-glycosidase (PNGase); ubiquitin proteasome;
D O I
10.1042/BJ20030887
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Recently, the role of N-linked glycans in the process of ERAD (endoplasmic reticulum-associated degradation) of proteins has been widely recognized. In the present study, we attempted to delineate further the sequence of events leading from a fully glycosylated soluble protein to its deglycosylated form. Degradation intermediates of a truncated form of ribophorin 1, namely RI332, which contains a single N-linked oligosaccharide and is a substrate for the ERAD/ubiquitin-proteasome pathway, were characterized in HeLa cells under conditions blocking proteasomal degradation. The action of a deoxymannojirimycin- and kifunensine-sensitive alpha1,2-mannosidase was shown here to be required for both further glycan processing and progression of RI332 in the ERAD pathway. In a first step, the Mans isomer B, generated by ER mannosidase 1, appears to be the major oligomannoside structure associated with RI332 intermediates. Some other trimmed N-glycan species, in particular Glc(1)Man(7)GlcNAc(2), were also found on the protein, indicating that several mannosidases might be implicated in the initial trimming of the oligomannoside. Secondly, another intermediate of degradation of RI332 accumulated after proteasome inhibition. We demonstrated that this completely deglycosylated form arose from the action of an N-glycanase closely linked to the ER membrane. Indeed, the deglycosylated form of the protein remained membrane-associated, while being accessible from the cytoplasm to ubiquitinating enzymes and to added protease. Our results indicate that deglycosylation of a soluble ERAD substrate glycoprotein occurs in at least two distinct steps and is coupled with the retro-translocation of the protein preceding its proteasomal degradation.
引用
收藏
页码:687 / 696
页数:10
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