Escherichia coli ribosomal protein S1 unfolds structured mRNAs onto the ribosome for active translation initiation.

Regulation of translation initiation is well appropriate to adapt cell growth in response to stress and environmental changes. Many bacterial mRNAs adopt structures in their 5' untranslated regions that modulate the accessibility of the 30S ribosomal subunit. Structured mRNAs interact with the...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autores principales: Mélodie Duval, Alexey Korepanov, Olivier Fuchsbauer, Pierre Fechter, Andrea Haller, Attilio Fabbretti, Laurence Choulier, Ronald Micura, Bruno P Klaholz, Pascale Romby, Mathias Springer, Stefano Marzi
Formato: article
Lenguaje:EN
Publicado: Public Library of Science (PLoS) 2013
Materias:
Acceso en línea:https://doaj.org/article/762b7f701d6e46f98f670e9c35a938b4
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
id oai:doaj.org-article:762b7f701d6e46f98f670e9c35a938b4
record_format dspace
spelling oai:doaj.org-article:762b7f701d6e46f98f670e9c35a938b42021-11-18T05:37:41ZEscherichia coli ribosomal protein S1 unfolds structured mRNAs onto the ribosome for active translation initiation.1544-91731545-788510.1371/journal.pbio.1001731https://doaj.org/article/762b7f701d6e46f98f670e9c35a938b42013-12-01T00:00:00Zhttps://www.ncbi.nlm.nih.gov/pmc/articles/pmid/24339747/?tool=EBIhttps://doaj.org/toc/1544-9173https://doaj.org/toc/1545-7885Regulation of translation initiation is well appropriate to adapt cell growth in response to stress and environmental changes. Many bacterial mRNAs adopt structures in their 5' untranslated regions that modulate the accessibility of the 30S ribosomal subunit. Structured mRNAs interact with the 30S in a two-step process where the docking of a folded mRNA precedes an accommodation step. Here, we used a combination of experimental approaches in vitro (kinetic of mRNA unfolding and binding experiments to analyze mRNA-protein or mRNA-ribosome complexes, toeprinting assays to follow the formation of ribosomal initiation complexes) and in vivo (genetic) to monitor the action of ribosomal protein S1 on the initiation of structured and regulated mRNAs. We demonstrate that r-protein S1 endows the 30S with an RNA chaperone activity that is essential for the docking and the unfolding of structured mRNAs, and for the correct positioning of the initiation codon inside the decoding channel. The first three OB-fold domains of S1 retain all its activities (mRNA and 30S binding, RNA melting activity) on the 30S subunit. S1 is not required for all mRNAs and acts differently on mRNAs according to the signals present at their 5' ends. This work shows that S1 confers to the ribosome dynamic properties to initiate translation of a large set of mRNAs with diverse structural features.Mélodie DuvalAlexey KorepanovOlivier FuchsbauerPierre FechterAndrea HallerAttilio FabbrettiLaurence ChoulierRonald MicuraBruno P KlaholzPascale RombyMathias SpringerStefano MarziPublic Library of Science (PLoS)articleBiology (General)QH301-705.5ENPLoS Biology, Vol 11, Iss 12, p e1001731 (2013)
institution DOAJ
collection DOAJ
language EN
topic Biology (General)
QH301-705.5
spellingShingle Biology (General)
QH301-705.5
Mélodie Duval
Alexey Korepanov
Olivier Fuchsbauer
Pierre Fechter
Andrea Haller
Attilio Fabbretti
Laurence Choulier
Ronald Micura
Bruno P Klaholz
Pascale Romby
Mathias Springer
Stefano Marzi
Escherichia coli ribosomal protein S1 unfolds structured mRNAs onto the ribosome for active translation initiation.
description Regulation of translation initiation is well appropriate to adapt cell growth in response to stress and environmental changes. Many bacterial mRNAs adopt structures in their 5' untranslated regions that modulate the accessibility of the 30S ribosomal subunit. Structured mRNAs interact with the 30S in a two-step process where the docking of a folded mRNA precedes an accommodation step. Here, we used a combination of experimental approaches in vitro (kinetic of mRNA unfolding and binding experiments to analyze mRNA-protein or mRNA-ribosome complexes, toeprinting assays to follow the formation of ribosomal initiation complexes) and in vivo (genetic) to monitor the action of ribosomal protein S1 on the initiation of structured and regulated mRNAs. We demonstrate that r-protein S1 endows the 30S with an RNA chaperone activity that is essential for the docking and the unfolding of structured mRNAs, and for the correct positioning of the initiation codon inside the decoding channel. The first three OB-fold domains of S1 retain all its activities (mRNA and 30S binding, RNA melting activity) on the 30S subunit. S1 is not required for all mRNAs and acts differently on mRNAs according to the signals present at their 5' ends. This work shows that S1 confers to the ribosome dynamic properties to initiate translation of a large set of mRNAs with diverse structural features.
format article
author Mélodie Duval
Alexey Korepanov
Olivier Fuchsbauer
Pierre Fechter
Andrea Haller
Attilio Fabbretti
Laurence Choulier
Ronald Micura
Bruno P Klaholz
Pascale Romby
Mathias Springer
Stefano Marzi
author_facet Mélodie Duval
Alexey Korepanov
Olivier Fuchsbauer
Pierre Fechter
Andrea Haller
Attilio Fabbretti
Laurence Choulier
Ronald Micura
Bruno P Klaholz
Pascale Romby
Mathias Springer
Stefano Marzi
author_sort Mélodie Duval
title Escherichia coli ribosomal protein S1 unfolds structured mRNAs onto the ribosome for active translation initiation.
title_short Escherichia coli ribosomal protein S1 unfolds structured mRNAs onto the ribosome for active translation initiation.
title_full Escherichia coli ribosomal protein S1 unfolds structured mRNAs onto the ribosome for active translation initiation.
title_fullStr Escherichia coli ribosomal protein S1 unfolds structured mRNAs onto the ribosome for active translation initiation.
title_full_unstemmed Escherichia coli ribosomal protein S1 unfolds structured mRNAs onto the ribosome for active translation initiation.
title_sort escherichia coli ribosomal protein s1 unfolds structured mrnas onto the ribosome for active translation initiation.
publisher Public Library of Science (PLoS)
publishDate 2013
url https://doaj.org/article/762b7f701d6e46f98f670e9c35a938b4
work_keys_str_mv AT melodieduval escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT alexeykorepanov escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT olivierfuchsbauer escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT pierrefechter escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT andreahaller escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT attiliofabbretti escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT laurencechoulier escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT ronaldmicura escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT brunopklaholz escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT pascaleromby escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT mathiasspringer escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
AT stefanomarzi escherichiacoliribosomalproteins1unfoldsstructuredmrnasontotheribosomeforactivetranslationinitiation
_version_ 1718424856794497024