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Differential Regulation of rRNA and tRNA Transcription from the rRNA-tRNA Composite Operon in Escherichia coli

Escherichia coli contains seven rRNA operons, each consisting of the genes for three rRNAs (16S, 23S and 5S rRNA in this order) and one or two tRNA genes in the spacer between 16S and 23S rRNA genes and one or two tRNA genes in the 3’ proximal region. All of these rRNA and tRNA genes are transcribed...

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Autores principales: Takada, Hiraku, Shimada, Tomohiro, Dey, Debashish, Quyyum, M. Zuhaib, Nakano, Masahiro, Ishiguro, Akira, Yoshida, Hideji, Yamamoto, Kaneyoshi, Sen, Ranjan, Ishihama, Akira
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5179076/
https://www.ncbi.nlm.nih.gov/pubmed/28005933
http://dx.doi.org/10.1371/journal.pone.0163057
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author Takada, Hiraku
Shimada, Tomohiro
Dey, Debashish
Quyyum, M. Zuhaib
Nakano, Masahiro
Ishiguro, Akira
Yoshida, Hideji
Yamamoto, Kaneyoshi
Sen, Ranjan
Ishihama, Akira
author_facet Takada, Hiraku
Shimada, Tomohiro
Dey, Debashish
Quyyum, M. Zuhaib
Nakano, Masahiro
Ishiguro, Akira
Yoshida, Hideji
Yamamoto, Kaneyoshi
Sen, Ranjan
Ishihama, Akira
author_sort Takada, Hiraku
collection PubMed
description Escherichia coli contains seven rRNA operons, each consisting of the genes for three rRNAs (16S, 23S and 5S rRNA in this order) and one or two tRNA genes in the spacer between 16S and 23S rRNA genes and one or two tRNA genes in the 3’ proximal region. All of these rRNA and tRNA genes are transcribed from two promoters, P1 and P2, into single large precursors that are afterward processed to individual rRNAs and tRNAs by a set of RNases. In the course of Genomic SELEX screening of promoters recognized by RNA polymerase (RNAP) holoenzyme containing RpoD sigma, a strong binding site was identified within 16S rRNA gene in each of all seven rRNA operons. The binding in vitro of RNAP RpoD holoenzyme to an internal promoter, referred to the promoter of riRNA (an internal RNA of the rRNA operon), within each 16S rRNA gene was confirmed by gel shift assay and AFM observation. Using this riRNA promoter within the rrnD operon as a representative, transcription in vitro was detected with use of the purified RpoD holoenzyme, confirming the presence of a constitutive promoter in this region. LacZ reporter assay indicated that this riRNA promoter is functional in vivo. The location of riRNA promoter in vivo as identified using a set of reporter plasmids agrees well with that identified in vitro. Based on transcription profile in vitro and Northern blot analysis in vivo, the majority of transcript initiated from this riRNA promoter was estimated to terminate near the beginning of 23S rRNA gene, indicating that riRNA leads to produce the spacer-coded tRNA. Under starved conditions, transcription of the rRNA operon is markedly repressed to reduce the intracellular level of ribosomes, but the levels of both riRNA and its processed tRNA(Glu) stayed unaffected, implying that riRNA plays a role in the continued steady-state synthesis of tRNAs from the spacers of rRNA operons. We then propose that the tRNA genes organized within the spacers of rRNA-tRNA composite operons are expressed independent of rRNA synthesis under specific conditions where further synthesis of ribosomes is not needed.
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spelling pubmed-51790762017-01-04 Differential Regulation of rRNA and tRNA Transcription from the rRNA-tRNA Composite Operon in Escherichia coli Takada, Hiraku Shimada, Tomohiro Dey, Debashish Quyyum, M. Zuhaib Nakano, Masahiro Ishiguro, Akira Yoshida, Hideji Yamamoto, Kaneyoshi Sen, Ranjan Ishihama, Akira PLoS One Research Article Escherichia coli contains seven rRNA operons, each consisting of the genes for three rRNAs (16S, 23S and 5S rRNA in this order) and one or two tRNA genes in the spacer between 16S and 23S rRNA genes and one or two tRNA genes in the 3’ proximal region. All of these rRNA and tRNA genes are transcribed from two promoters, P1 and P2, into single large precursors that are afterward processed to individual rRNAs and tRNAs by a set of RNases. In the course of Genomic SELEX screening of promoters recognized by RNA polymerase (RNAP) holoenzyme containing RpoD sigma, a strong binding site was identified within 16S rRNA gene in each of all seven rRNA operons. The binding in vitro of RNAP RpoD holoenzyme to an internal promoter, referred to the promoter of riRNA (an internal RNA of the rRNA operon), within each 16S rRNA gene was confirmed by gel shift assay and AFM observation. Using this riRNA promoter within the rrnD operon as a representative, transcription in vitro was detected with use of the purified RpoD holoenzyme, confirming the presence of a constitutive promoter in this region. LacZ reporter assay indicated that this riRNA promoter is functional in vivo. The location of riRNA promoter in vivo as identified using a set of reporter plasmids agrees well with that identified in vitro. Based on transcription profile in vitro and Northern blot analysis in vivo, the majority of transcript initiated from this riRNA promoter was estimated to terminate near the beginning of 23S rRNA gene, indicating that riRNA leads to produce the spacer-coded tRNA. Under starved conditions, transcription of the rRNA operon is markedly repressed to reduce the intracellular level of ribosomes, but the levels of both riRNA and its processed tRNA(Glu) stayed unaffected, implying that riRNA plays a role in the continued steady-state synthesis of tRNAs from the spacers of rRNA operons. We then propose that the tRNA genes organized within the spacers of rRNA-tRNA composite operons are expressed independent of rRNA synthesis under specific conditions where further synthesis of ribosomes is not needed. Public Library of Science 2016-12-22 /pmc/articles/PMC5179076/ /pubmed/28005933 http://dx.doi.org/10.1371/journal.pone.0163057 Text en © 2016 Takada et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Takada, Hiraku
Shimada, Tomohiro
Dey, Debashish
Quyyum, M. Zuhaib
Nakano, Masahiro
Ishiguro, Akira
Yoshida, Hideji
Yamamoto, Kaneyoshi
Sen, Ranjan
Ishihama, Akira
Differential Regulation of rRNA and tRNA Transcription from the rRNA-tRNA Composite Operon in Escherichia coli
title Differential Regulation of rRNA and tRNA Transcription from the rRNA-tRNA Composite Operon in Escherichia coli
title_full Differential Regulation of rRNA and tRNA Transcription from the rRNA-tRNA Composite Operon in Escherichia coli
title_fullStr Differential Regulation of rRNA and tRNA Transcription from the rRNA-tRNA Composite Operon in Escherichia coli
title_full_unstemmed Differential Regulation of rRNA and tRNA Transcription from the rRNA-tRNA Composite Operon in Escherichia coli
title_short Differential Regulation of rRNA and tRNA Transcription from the rRNA-tRNA Composite Operon in Escherichia coli
title_sort differential regulation of rrna and trna transcription from the rrna-trna composite operon in escherichia coli
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5179076/
https://www.ncbi.nlm.nih.gov/pubmed/28005933
http://dx.doi.org/10.1371/journal.pone.0163057
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