Visualization of translation and protein biogenesis at the ER membrane

Publication date

2023-02-02

Authors

Gemmer, MaximilianISNI 0000000492860859
Chaillet, Marten L.ISNI 0000000492852648
van Loenhout, Joyce
Cuevas Arenas, RodrigoISNI 0000000518036607
Vismpas, DimitriosISNI 0000000527863073
Gröllers-Mulderij, MariskaISNI 000000050684608X
Koh, Fujiet A
Albanese, PascalISNI 0000000492833930
Scheltema, Richard AORCID 0000-0002-1668-0253ISNI 0000000392955121
Howes, StuartISNI 0000000492869992

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Article
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cc_by

Abstract

The dynamic ribosome-translocon complex, which resides at the endoplasmic reticulum (ER) membrane, produces a major fraction of the human proteome 1,2. It governs the synthesis, translocation, membrane insertion, N-glycosylation, folding and disulfide-bond formation of nascent proteins. Although individual components of this machinery have been studied at high resolution in isolation 3-7, insights into their interplay in the native membrane remain limited. Here we use cryo-electron tomography, extensive classification and molecular modelling to capture snapshots of mRNA translation and protein maturation at the ER membrane at molecular resolution. We identify a highly abundant classical pre-translocation intermediate with eukaryotic elongation factor 1a (eEF1a) in an extended conformation, suggesting that eEF1a may remain associated with the ribosome after GTP hydrolysis during proofreading. At the ER membrane, distinct polysomes bind to different ER translocons specialized in the synthesis of proteins with signal peptides or multipass transmembrane proteins with the translocon-associated protein complex (TRAP) present in both. The near-complete atomic model of the most abundant ER translocon variant comprising the protein-conducting channel SEC61, TRAP and the oligosaccharyltransferase complex A (OSTA) reveals specific interactions of TRAP with other translocon components. We observe stoichiometric and sub-stoichiometric cofactors associated with OSTA, which are likely to include protein isomerases. In sum, we visualize ER-bound polysomes with their coordinated downstream machinery.

Keywords

Endoplasmic Reticulum/metabolism, Humans, Membrane Proteins/metabolism, Protein Biosynthesis, Protein Sorting Signals, Protein Transport, Ribosomes/metabolism, SEC Translocation Channels/chemistry, General

Citation

Gemmer, M, Chaillet, M L, van Loenhout, J, Cuevas Arenas, R, Vismpas, D, Gröllers-Mulderij, M, Koh, F A, Albanese, P, Scheltema, R A, Howes, S C, Kotecha, A, Fedry, J & Förster, F 2023, 'Visualization of translation and protein biogenesis at the ER membrane', Nature, vol. 614, no. 7946, pp. 160-167. https://doi.org/10.1038/s41586-022-05638-5