The Journal of Cell Biology · 2015 · 99 citations · 40 references
ProteasomeMolecular BiologyMolecular GeneticsErad SubstratesIntramembrane DegronYeastDoa10-dependent MannerProteomicsProtein DegradationSecretory PathwayDoa10 SubstrateProtein FunctionMembrane BiologyProtein TransportCell BiologyNatural SciencesIntracellular TraffickingCellular BiochemistryMedicine
Aberrant endoplasmic reticulum (ER) proteins are eliminated by ER-associated degradation (ERAD). This process involves protein retrotranslocation into the cytosol, ubiquitylation, and proteasomal degradation. ERAD substrates are classified into three categories based on the location of their degradation signal/degron: ERAD-L (lumen), ERAD-M (membrane), and ERAD-C (cytosol) substrates. In Saccharomyces cerevisiae, the membrane proteins Hrd1 and Doa10 are the predominant ERAD ubiquitin-protein ligases (E3s). The current notion is that ERAD-L and ERAD-M substrates are exclusively handled by Hrd1, whereas ERAD-C substrates are recognized by Doa10. In this paper, we identify the transmembrane (TM) protein Sec61 β-subunit homologue 2 (Sbh2) as a Doa10 substrate. Sbh2 is part of the trimeric Ssh1 complex involved in protein translocation. Unassembled Sbh2 is rapidly degraded in a Doa10-dependent manner. Intriguingly, the degron maps to the Sbh2 TM region. Thus, in contrast to the prevailing view, Doa10 (and presumably its human orthologue) has the capacity for recognizing intramembrane degrons, expanding its spectrum of substrates.
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X-ray structure of a protein-conducting channel
Bert van den Berg, William Clemons, Ian Collinson et al. · Nature · 2003 · 1.2K citations
X-ray Crystallography, Protein-conducting Channel, Natural Sciences +7
The GET Complex Mediates Insertion of Tail-Anchored Proteins into the ER Membrane
Maya Schuldiner, Jutta Metz, Volker Schmid et al. · Cell · 2008 · 541 citations · Full text