UGGT1-mediated reglucosylation of N-glycan competes with ER-associated degradation of unstable and misfolded glycoproteins

Author:

Ninagawa Satoshi12ORCID,Matsuo Masaki2,Ying Deng3,Oshita Shuichiro2,Aso Shinya2,Matsushita Kazutoshi3,Taniguchi Mai3,Fueki Akane2,Yamashiro Moe2,Sugasawa Kaoru14,Saito Shunsuke3,Imami Koshi5ORCID,Kizuka Yasuhiko6,Sakuma Tetsushi7ORCID,Yamamoto Takashi7,Yagi Hirokazu89ORCID,Kato Koichi8910,Mori Kazutoshi311

Affiliation:

1. Biosignal Research Center, Kobe University

2. Department of Bioresource Science, Graduate School of Agricultural Science, Kobe University

3. Department of Biophysics, Graduate School of Science, Kyoto University

4. Graduate School of Science, Kobe University

5. Proteome Homeostasis Research Unit, RIKEN Center for Integrative Medical Sciences

6. Laboratory of Glycobiochemistry, Institute for Glyco-core Research (iGCORE), Gifu University

7. Division of Integrated Sciences for Life, Graduate School of Integrated Sciences for Life, Hiroshima University

8. Graduate School of Pharmaceutical Sciences, Nagoya City University

9. Exploratory Research Center on Life and Living Systems (ExCELLS), National Institutes of Natural Sciences

10. Institute for Molecular Science (IMS), National Institutes of Natural Sciences

11. Institute for Advanced Science, Kyoto University

Abstract

How the fate (folding versus degradation) of glycoproteins is determined in the endoplasmic reticulum (ER) is an intriguing question. Monoglucosylated glycoproteins are recognized by lectin chaperones to facilitate their folding, whereas glycoproteins exposing well-trimmed mannoses are subjected to glycoprotein ER-associated degradation (gpERAD); we have elucidated how mannoses are sequentially trimmed by EDEM family members (George et al., 2020, 2021 eLife). Although reglucosylation by UGGT was previously reported to have no effect on substrate degradation, here we directly tested this notion using cells with genetically disrupted UGGT1/2. Strikingly, the results showed that UGGT1 delayed the degradation of misfolded substrates and unstable glycoproteins including ATF6α. An experiment with a point mutant of UGGT1 indicated that the glucosylation activity of UGGT1 was required for the inhibition of early glycoprotein degradation. These and overexpression-based competition experiments suggested that the fate of glycoproteins is determined by a tug-of-war between structure formation by UGGT1 and degradation by EDEMs. We further demonstrated the physiological importance of UGGT1, since ATF6α cannot function properly without UGGT1. Thus, our work strongly suggests that UGGT1 is a central factor in ER protein quality control via regulation of both glycoprotein folding and degradation.

Publisher

eLife Sciences Publications, Ltd

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