The ABCF proteins in Escherichia coli individually cope with 'hard-to-translate' nascent peptide sequences.
Journal
Nucleic acids research
ISSN: 1362-4962
Titre abrégé: Nucleic Acids Res
Pays: England
ID NLM: 0411011
Informations de publication
Date de publication:
25 Apr 2024
25 Apr 2024
Historique:
accepted:
10
04
2024
revised:
18
03
2024
received:
29
10
2023
medline:
25
4
2024
pubmed:
25
4
2024
entrez:
25
4
2024
Statut:
aheadofprint
Résumé
Organisms possess a wide variety of proteins with diverse amino acid sequences, and their synthesis relies on the ribosome. Empirical observations have led to the misconception that ribosomes are robust protein factories, but in reality, they have several weaknesses. For instance, ribosomes stall during the translation of the proline-rich sequences, but the elongation factor EF-P assists in synthesizing proteins containing the poly-proline sequences. Thus, living organisms have evolved to expand the translation capability of ribosomes through the acquisition of translation elongation factors. In this study, we have revealed that Escherichia coli ATP-Binding Cassette family-F (ABCF) proteins, YheS, YbiT, EttA and Uup, individually cope with various problematic nascent peptide sequences within the exit tunnel. The correspondence between noncanonical translations and ABCFs was YheS for the translational arrest by nascent SecM, YbiT for poly-basic sequence-dependent stalling and poly-acidic sequence-dependent intrinsic ribosome destabilization (IRD), EttA for IRD at the early stage of elongation, and Uup for poly-proline-dependent stalling. Our results suggest that ATP hydrolysis-coupled structural rearrangement and the interdomain linker sequence are pivotal for handling 'hard-to-translate' nascent peptides. Our study highlights a new aspect of ABCF proteins to reduce the potential risks that are encoded within the nascent peptide sequences.
Identifiants
pubmed: 38661232
pii: 7658047
doi: 10.1093/nar/gkae309
pii:
doi:
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Subventions
Organisme : MEXT
ID : JP20H05925
Organisme : Ohsumi Frontier Science Foundation
Organisme : Japan Foundation for Applied Enzymology
Organisme : Takeda Science Foundation
Organisme : Yamada Science Foundation
Organisme : JST CREST JPMJCR19S2
Organisme : JST SPRING JPMJSP2108
Informations de copyright
© The Author(s) 2024. Published by Oxford University Press on behalf of Nucleic Acids Research.