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Residue-by-residue analysis of cotranslational membrane protein integration in vivo
Stockholms universitet, Naturvetenskapliga fakulteten, Institutionen för biokemi och biofysik.ORCID-id: 0000-0001-9230-8544
Stockholms universitet, Naturvetenskapliga fakulteten, Institutionen för biokemi och biofysik.ORCID-id: 0000-0002-2885-7634
Stockholms universitet, Naturvetenskapliga fakulteten, Institutionen för biokemi och biofysik.ORCID-id: 0000-0001-6001-5608
Stockholms universitet, Naturvetenskapliga fakulteten, Institutionen för biokemi och biofysik.
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Antal upphovsmän: 92021 (Engelska)Ingår i: eLIFE, E-ISSN 2050-084X, Vol. 10, artikel-id e64302Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

We follow the cotranslational biosynthesis of three multispanning Escherichia coli inner membrane proteins in vivo using high-resolution force profile analysis. The force profiles show that the nascent chain is subjected to rapidly varying pulling forces during translation and reveal unexpected complexities in the membrane integration process. We find that an N-terminal cytoplasmic domain can fold in the ribosome exit tunnel before membrane integration starts, that charged residues and membrane-interacting segments such as re-entrant loops and surface helices flanking a transmembrane helix (TMH) can advance or delay membrane integration, and that point mutations in an upstream TMH can affect the pulling forces generated by downstream TMHs in a highly position-dependent manner, suggestive of residue-specific interactions between TMHs during the integration process. Our results support the 'sliding' model of translocon-mediated membrane protein integration, in which hydrophobic segments are continually exposed to the lipid bilayer during their passage through the SecYEG translocon.

Ort, förlag, år, upplaga, sidor
2021. Vol. 10, artikel-id e64302
Nationell ämneskategori
Biologiska vetenskaper
Identifikatorer
URN: urn:nbn:se:su:diva-192585DOI: 10.7554/eLife.64302ISI: 000620792100001PubMedID: 33554862OAI: oai:DiVA.org:su-192585DiVA, id: diva2:1547392
Tillgänglig från: 2021-04-26 Skapad: 2021-04-26 Senast uppdaterad: 2022-04-19Bibliografiskt granskad
Ingår i avhandling
1. Cotranslational protein biogenesis in Escherichia coli monitored by force profile analysis
Öppna denna publikation i ny flik eller fönster >>Cotranslational protein biogenesis in Escherichia coli monitored by force profile analysis
2022 (Engelska)Doktorsavhandling, sammanläggning (Övrigt vetenskapligt)
Abstract [en]

Proteins are a diverse class of biomolecules that carry out many essential functions across all organisms. They can either be found in aqueous compartments or embedded in biological membranes of the cell and are called soluble or membrane proteins, respectively. Membrane proteins are involved in many essential cellular pathways and account for about one third of both pro- and eukaryotic proteomes. They are major drug targets and are critical when cells are engineered to secrete therapeutic proteins and industrial enzymes.

In order to be functional, proteins must fold into specific 3-dimensional structures, be targeted to the right destination and can undergo additional maturation steps. Most studies have focused on the characterisation of fully synthesized proteins, and much less is known about their biogenesis while still being translated by the ribosome. Here, we focus on cotranslational events studied in the well-characterised model bacterium Escherichia coli, and take advantage of a recently developed technology that uses so-called translational arrest peptides (APs). APs stall their own translation on the ribosome unless a sufficient pulling force is applied on the nascent polypeptide chain, and can therefore be used as molecular force sensors. We found that enough force to overcome AP-induced translational arrest can be generated by transmembrane helices (TMHs) as they insert into the E. coli inner membrane. By following the stepwise cotranslational insertion of three multi-spanning integral membrane proteins, we found that a TMH starts generating a force on the nascent chain when it reaches about 45 residues away from the ribosomal peptidyl transferase center (PTC). At this distance the TMH is expected to be in the vicinity of the bacterial SecYEG translocon and begin to insert into the lipid bilayer. Interestingly, this force can be affected by the presence of other membrane-interacting segments flanking the TMH. Another intriguing finding was that an N-terminal globular domain can fold well before the downstream membrane domain starts to integrate into the membrane. Furthermore, we detected forces that are generated by residue-specific intrachain as well as interchain interactions, which suggest cotranslational folding and oligomerisation of membrane proteins. Finally, we recorded the force that is generated by a recombinant soluble protein as it folds cotranslationally in E. coli. The onset of the folding was detected when the protein’s C-terminus has not yet fully emerged from the ribosome exit tunnel, and folding was delayed in the presence of the cotranslationally acting chaperone trigger factor (TF).

Taken together, the work presented in this thesis has led to a better understanding of how proteins fold, assemble as well as insert into a biological membrane during their translation, and has revealed multiple factors that contribute to the complexity of cotranslational protein biogenesis.

Ort, förlag, år, upplaga, sidor
Stockholm: Department of Biochemistry and Biophysics, Stockholm University, 2022. s. 84
Nyckelord
Escherichia coli, cotranslational protein biogenesis, membrane protein, soluble protein, transmembrane helices, force profile analysis, arrest peptide
Nationell ämneskategori
Biokemi Molekylärbiologi
Forskningsämne
biokemi
Identifikatorer
urn:nbn:se:su:diva-204078 (URN)978-91-7911-884-6 (ISBN)978-91-7911-885-3 (ISBN)
Disputation
2022-06-02, Magnélisalen, Kemiska övningslaboratoriet, Svante Arrhenius väg 16 B and online via Zoom, public link is available at the department website, Stockholm, 14:00 (Engelska)
Opponent
Handledare
Tillgänglig från: 2022-05-10 Skapad: 2022-04-19 Senast uppdaterad: 2025-02-20Bibliografiskt granskad

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Nicolaus, FelixMetola, AneMermans, DaphneKrč, Ajdavon Heijne, Gunnar

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Nicolaus, FelixMetola, AneMermans, DaphneKrč, Ajdavon Heijne, Gunnar
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Institutionen för biokemi och biofysikScience for Life Laboratory (SciLifeLab)
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