Endosome and Golgi-associated degradation (EGAD) of membrane proteins regulates sphingolipid metabolism

Autor(en): Schmidt, Oliver
Weyer, Yannick
Baumann, Verena
Widerin, Michael A.
Eising, Sebastian
Angelova, Mihaela
Schleiffer, Alexander
Kremser, Leopold
Lindner, Herbert
Peter, Matthias
Froehlich, Florian 
Teis, David
Stichwörter: Biochemistry & Molecular Biology; Cell Biology; endosomes; ER; GLOBAL ANALYSIS; Golgi; KINASE YPK1; MULTIVESICULAR BODIES; proteasome; QUALITY-CONTROL; RECRUITS CDC48; RETICULUM-ASSOCIATED DEGRADATION; SACCHAROMYCES-CEREVISIAE; sphingolipids; SREBP CLEAVAGE; ubiquitin; UBIQUITIN-LIGASE
Erscheinungsdatum: 2019
Herausgeber: WILEY
Journal: EMBO JOURNAL
Volumen: 38
Ausgabe: 15
Zusammenfassung: 
Cellular homeostasis requires the ubiquitin-dependent degradation of membrane proteins. This was assumed to be mediated exclusively either by endoplasmic reticulum-associated degradation (ERAD) or by endosomal sorting complexes required for transport (ESCRT)-dependent lysosomal degradation. We identified in Saccharomyces cerevisiae an additional pathway that selectively extracts membrane proteins at Golgi and endosomes for degradation by cytosolic proteasomes. One endogenous substrate of this endosome and Golgi-associated degradation pathway (EGAD) is the ER-resident membrane protein Orm2, a negative regulator of sphingolipid biosynthesis. Orm2 degradation is initiated by phosphorylation, which triggers its ER export. Once on Golgi and endosomes, Orm2 is poly-ubiquitinated by the membrane-embedded ``Defective in SREBP cleavage'' (Dsc) ubiquitin ligase complex. Cdc48/VCP then extracts ubiquitinated Orm2 from membranes, which is tightly coupled to the proteasomal degradation of Orm2. Thereby, EGAD prevents the accumulation of Orm2 at the ER and in post-ER compartments and promotes the controlled de-repression of sphingolipid biosynthesis. Thus, the selective degradation of membrane proteins by EGAD contributes to proteostasis and lipid homeostasis in eukaryotic cells.
ISSN: 02614189
DOI: 10.15252/embj.2018101433

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