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The EMC acts as a chaperone for membrane proteins

Nature Communications. 2025-08; 
Carolin J Klose, Kevin M Meighen-Berger, Martin Kulke, Marina Parr, Barbara Steigenberger, Martin Zacharias, Dmitrij Frishman, Matthias J Feige Department of Bioscience, TUM School of Natural Sciences, Center for Functional Protein Assemblies (CPA), Technical University of Munich, Garching, Germany.
Products/Services Used Details Operation
Catalog Antibodies Antibodies used in this study: EMC4 (Abcam, ab184544, 1:2000), EMC1 (Novus Biologicals, NBP2-59097 and NBP3-18427, 1:500), HA.11 (Biolegend, Poly9023, 1:1000), myc clone 4A6 upstate (Sigma-Aldrich, 05-724, 1:500), FLAG (Sigma-Aldrich, F7425, 1:1000), NWSHPQFEK 5A9F9 (Genscript, A01732, 1:1000), Get A Quote

Abstract

Structure formation of membrane proteins is error-prone and thus requires chaperones that oversee this essential process in cell biology. The ER membrane protein complex (EMC) is well-defined as a transmembrane domain (TMD) insertase. In this study, we characterize an additional chaperone function of the EMC. We use interactomics and systematic studies with model proteins to comprehensively define client features for this EMC chaperone mode. Based on this data, we develop a machine learning-based tool for client prediction. Mechanistically, our study reveals that the EMC engages TMDs via its EMC1 subunit and modulates their orientation within the lipid bilayer. Productive TMD assembly reduces binding to the EMC... More

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