The GET insertase exhibits conformational plasticity and induces membrane thinning

2023 | journal article. A publication with affiliation to the University of Göttingen.

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​The GET insertase exhibits conformational plasticity and induces membrane thinning​
McDowell, M. A.; Heimes, M.; Enkavi, G.; Farkas, Á.; Saar, D.; Wild, K. & Schwappach, B. et al.​ (2023) 
Nature Communications14(1).​ DOI: https://doi.org/10.1038/s41467-023-42867-2 

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Authors
McDowell, Melanie A.; Heimes, Michael; Enkavi, Giray; Farkas, Ákos; Saar, Daniel; Wild, Klemens; Schwappach, Blanche; Vattulainen, Ilpo; Sinning, Irmgard
Abstract
Abstract The eukaryotic guided entry of tail-anchored proteins (GET) pathway mediates the biogenesis of tail-anchored (TA) membrane proteins at the endoplasmic reticulum. In the cytosol, the Get3 chaperone captures the TA protein substrate and delivers it to the Get1/Get2 membrane protein complex (GET insertase), which then inserts the substrate via a membrane-embedded hydrophilic groove. Here, we present structures, atomistic simulations and functional data of human and Chaetomium thermophilum Get1/Get2/Get3. The core fold of the GET insertase is conserved throughout eukaryotes, whilst thinning of the lipid bilayer occurs in the vicinity of the hydrophilic groove to presumably lower the energetic barrier of membrane insertion. We show that the gating interaction between Get2 helix α3’ and Get3 drives conformational changes in both Get3 and the Get1/Get2 membrane heterotetramer. Thus, we provide a framework to understand the conformational plasticity of the GET insertase and how it remodels its membrane environment to promote substrate insertion.
Issue Date
2023
Journal
Nature Communications 
Project
SFB 1190: Transportmaschinen und Kontaktstellen zellulärer Kompartimente 
Working Group
RG Schwappach (Membrane Protein Biogenesis) 
eISSN
2041-1723
Language
English

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