Selective involvement of UGGT variant: UGGT2 in protecting mouse embryonic fibroblasts from saturated lipid-induced ER stress

Author:

Hung Hui-Hsing1ORCID,Nagatsuka Yasuko1,Soldà Tatiana2,Kodali Vamsi K.3ORCID,Iwabuchi Kazuhisa4ORCID,Kamiguchi Hiroyuki1,Kano Koki5ORCID,Matsuo Ichiro5ORCID,Ikeda Kazutaka6,Kaufman Randal J.3ORCID,Molinari Maurizio27,Greimel Peter1ORCID,Hirabayashi Yoshio48

Affiliation:

1. RIKEN Center for Brain Science, Wako, Saitama 351-0198, Japan

2. Faculty of Biomedical Sciences, Institute for Research in Biomedicine, Università della Svizzera Italiana, 6500 Bellinzona, Switzerland

3. Degenerative Diseases Program, Sanford Burnham Prebys Medical Discovery Institute, La Jolla, CA 92037

4. Institute for Environmental and Gender-Specific Medicine, Juntendo University Graduate School of Medicine, Chiba 279-0021, Japan

5. Division of Molecular Science, Gunma University, Maebashi 371-8510, Japan

6. Laboratory of Biomolecule Analysis, Kazusa DNA Research Institute, Chiba 292-0818, Japan

7. School of Life Sciences, École Polytechnique Fédérale de Lausanne, 1015 Lausanne, Switzerland

8. RIKEN Cluster for Pioneering Research, RIKEN, Wako, Saitama 351-0198, Japan

Abstract

Secretory proteins and lipids are biosynthesized in the endoplasmic reticulum (ER). The “protein quality control” system (PQC) monitors glycoprotein folding and supports the elimination of terminally misfolded polypeptides. A key component of the PQC system is Uridine diphosphate glucose:glycoprotein glucosyltransferase 1 (UGGT1). UGGT1 re-glucosylates unfolded glycoproteins, to enable the re-entry in the protein-folding cycle and impede the aggregation of misfolded glycoproteins. In contrast, a complementary “lipid quality control” (LQC) system that maintains lipid homeostasis remains elusive. Here, we demonstrate that cytotoxic phosphatidic acid derivatives with saturated fatty acyl chains are one of the physiological substrates of UGGT2, an isoform of UGGT1. UGGT2 produces lipid raft-resident phosphatidylglucoside regulating autophagy. Under the disruption of lipid metabolism and hypoxic conditions, UGGT2 inhibits PERK-ATF4-CHOP-mediated apoptosis in mouse embryonic fibroblasts. Moreover, the susceptibility of UGGT2 KO mice to high-fat diet-induced obesity is elevated. We propose that UGGT2 is an ER-localized LQC component that mitigates saturated lipid-associated ER stress via lipid glucosylation.

Funder

Japan Agency for Medical Research and Development

MEXT | Japan Society for the Promotion of Science

Foundation for the NIH

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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