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Both RNase E and RNase III control the stability of sodB mRNA upon translational inhibition by the small regulatory RNA RyhB

Previous work has demonstrated that iron-dependent variations in the steady-state concentration and translatability of sodB mRNA are modulated by the small regulatory RNA RyhB, the RNA chaperone Hfq and RNase E. In agreement with the proposed role of RNase E, we found that the decay of sodB mRNA is...

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Autores principales: Afonyushkin, Taras, Večerek, Branislav, Moll, Isabella, Bläsi, Udo, Kaberdin, Vladimir R.
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1069011/
https://www.ncbi.nlm.nih.gov/pubmed/15781494
http://dx.doi.org/10.1093/nar/gki313
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author Afonyushkin, Taras
Večerek, Branislav
Moll, Isabella
Bläsi, Udo
Kaberdin, Vladimir R.
author_facet Afonyushkin, Taras
Večerek, Branislav
Moll, Isabella
Bläsi, Udo
Kaberdin, Vladimir R.
author_sort Afonyushkin, Taras
collection PubMed
description Previous work has demonstrated that iron-dependent variations in the steady-state concentration and translatability of sodB mRNA are modulated by the small regulatory RNA RyhB, the RNA chaperone Hfq and RNase E. In agreement with the proposed role of RNase E, we found that the decay of sodB mRNA is retarded upon inactivation of RNase E in vivo, and that the enzyme cleaves within the sodB 5′-untranslated region (5′-UTR) in vitro, thereby removing the 5′ stem–loop structure that facilitates Hfq and ribosome binding. Moreover, RNase E cleavage can also occur at a cryptic site that becomes available upon sodB 5′-UTR/RyhB base pairing. We show that while playing an important role in facilitating the interaction of RyhB with sodB mRNA, Hfq is not tightly retained by the RyhB–sodB mRNA complex and can be released from it through interaction with other RNAs added in trans. Unlike turnover of sodB mRNA, RyhB decay in vivo is mainly dependent on RNase III, and its cleavage by RNase III in vitro is facilitated upon base pairing with the sodB 5′-UTR. These data are discussed in terms of a model, which accounts for the observed roles of RNase E and RNase III in sodB mRNA turnover.
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spelling pubmed-10690112005-03-21 Both RNase E and RNase III control the stability of sodB mRNA upon translational inhibition by the small regulatory RNA RyhB Afonyushkin, Taras Večerek, Branislav Moll, Isabella Bläsi, Udo Kaberdin, Vladimir R. Nucleic Acids Res Article Previous work has demonstrated that iron-dependent variations in the steady-state concentration and translatability of sodB mRNA are modulated by the small regulatory RNA RyhB, the RNA chaperone Hfq and RNase E. In agreement with the proposed role of RNase E, we found that the decay of sodB mRNA is retarded upon inactivation of RNase E in vivo, and that the enzyme cleaves within the sodB 5′-untranslated region (5′-UTR) in vitro, thereby removing the 5′ stem–loop structure that facilitates Hfq and ribosome binding. Moreover, RNase E cleavage can also occur at a cryptic site that becomes available upon sodB 5′-UTR/RyhB base pairing. We show that while playing an important role in facilitating the interaction of RyhB with sodB mRNA, Hfq is not tightly retained by the RyhB–sodB mRNA complex and can be released from it through interaction with other RNAs added in trans. Unlike turnover of sodB mRNA, RyhB decay in vivo is mainly dependent on RNase III, and its cleavage by RNase III in vitro is facilitated upon base pairing with the sodB 5′-UTR. These data are discussed in terms of a model, which accounts for the observed roles of RNase E and RNase III in sodB mRNA turnover. Oxford University Press 2005 2005-03-21 /pmc/articles/PMC1069011/ /pubmed/15781494 http://dx.doi.org/10.1093/nar/gki313 Text en © The Author 2005. Published by Oxford University Press. All rights reserved
spellingShingle Article
Afonyushkin, Taras
Večerek, Branislav
Moll, Isabella
Bläsi, Udo
Kaberdin, Vladimir R.
Both RNase E and RNase III control the stability of sodB mRNA upon translational inhibition by the small regulatory RNA RyhB
title Both RNase E and RNase III control the stability of sodB mRNA upon translational inhibition by the small regulatory RNA RyhB
title_full Both RNase E and RNase III control the stability of sodB mRNA upon translational inhibition by the small regulatory RNA RyhB
title_fullStr Both RNase E and RNase III control the stability of sodB mRNA upon translational inhibition by the small regulatory RNA RyhB
title_full_unstemmed Both RNase E and RNase III control the stability of sodB mRNA upon translational inhibition by the small regulatory RNA RyhB
title_short Both RNase E and RNase III control the stability of sodB mRNA upon translational inhibition by the small regulatory RNA RyhB
title_sort both rnase e and rnase iii control the stability of sodb mrna upon translational inhibition by the small regulatory rna ryhb
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1069011/
https://www.ncbi.nlm.nih.gov/pubmed/15781494
http://dx.doi.org/10.1093/nar/gki313
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