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Post-Transcriptional Regulator Hfq Binds Catalase HPII: Crystal Structure of the Complex

We report a crystal structure of Hfq and catalase HPII from Escherichia coli. The post-transcriptional regulator Hfq plays a key role in the survival of bacteria under stress. A small non-coding RNA (sRNA) DsrA is required for translation of the stationary phase sigma factor RpoS, which is the centr...

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Autores principales: Yonekura, Koji, Watanabe, Masahiro, Kageyama, Yuko, Hirata, Kunio, Yamamoto, Masaki, Maki-Yonekura, Saori
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3819363/
https://www.ncbi.nlm.nih.gov/pubmed/24223139
http://dx.doi.org/10.1371/journal.pone.0078216
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author Yonekura, Koji
Watanabe, Masahiro
Kageyama, Yuko
Hirata, Kunio
Yamamoto, Masaki
Maki-Yonekura, Saori
author_facet Yonekura, Koji
Watanabe, Masahiro
Kageyama, Yuko
Hirata, Kunio
Yamamoto, Masaki
Maki-Yonekura, Saori
author_sort Yonekura, Koji
collection PubMed
description We report a crystal structure of Hfq and catalase HPII from Escherichia coli. The post-transcriptional regulator Hfq plays a key role in the survival of bacteria under stress. A small non-coding RNA (sRNA) DsrA is required for translation of the stationary phase sigma factor RpoS, which is the central regulator of the general stress response. Hfq facilitates efficient translation of rpoS mRNA, which encodes RpoS. Hfq helps in the function of other specific proteins involved in RNA processing, indicating its versatility in the cell. However, structural information regarding its interactions with partners is missing. Here we obtained crystals of Hfq and HPII complexes from cell lysates following attempts to overexpress a foreign membrane protein. HPII is one of two catalases in E. coli and its mRNA is transcribed by an RNA polymerase holoenzyme containing RpoS, which in turn is under positive control of small non-coding RNAs and of the RNA chaperone Hfq. This sigma factor is known to have a pronounced effect on the expression of HPII. The crystal structure reveals that a Hfq hexamer binds each subunit of a HPII tetramer. Each subunit of the Hfq hexamer exhibits a unique binding mode with HPII. The hexamer of Hfq interacts via its distal surface. The proximal and distal surfaces are known to specifically bind different sRNAs, and binding of HPII could affect Hfq function. Hfq-HPII complexation has no effect on catalase HPII activity.
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spelling pubmed-38193632013-11-12 Post-Transcriptional Regulator Hfq Binds Catalase HPII: Crystal Structure of the Complex Yonekura, Koji Watanabe, Masahiro Kageyama, Yuko Hirata, Kunio Yamamoto, Masaki Maki-Yonekura, Saori PLoS One Research Article We report a crystal structure of Hfq and catalase HPII from Escherichia coli. The post-transcriptional regulator Hfq plays a key role in the survival of bacteria under stress. A small non-coding RNA (sRNA) DsrA is required for translation of the stationary phase sigma factor RpoS, which is the central regulator of the general stress response. Hfq facilitates efficient translation of rpoS mRNA, which encodes RpoS. Hfq helps in the function of other specific proteins involved in RNA processing, indicating its versatility in the cell. However, structural information regarding its interactions with partners is missing. Here we obtained crystals of Hfq and HPII complexes from cell lysates following attempts to overexpress a foreign membrane protein. HPII is one of two catalases in E. coli and its mRNA is transcribed by an RNA polymerase holoenzyme containing RpoS, which in turn is under positive control of small non-coding RNAs and of the RNA chaperone Hfq. This sigma factor is known to have a pronounced effect on the expression of HPII. The crystal structure reveals that a Hfq hexamer binds each subunit of a HPII tetramer. Each subunit of the Hfq hexamer exhibits a unique binding mode with HPII. The hexamer of Hfq interacts via its distal surface. The proximal and distal surfaces are known to specifically bind different sRNAs, and binding of HPII could affect Hfq function. Hfq-HPII complexation has no effect on catalase HPII activity. Public Library of Science 2013-11-06 /pmc/articles/PMC3819363/ /pubmed/24223139 http://dx.doi.org/10.1371/journal.pone.0078216 Text en © 2013 Yonekura 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Yonekura, Koji
Watanabe, Masahiro
Kageyama, Yuko
Hirata, Kunio
Yamamoto, Masaki
Maki-Yonekura, Saori
Post-Transcriptional Regulator Hfq Binds Catalase HPII: Crystal Structure of the Complex
title Post-Transcriptional Regulator Hfq Binds Catalase HPII: Crystal Structure of the Complex
title_full Post-Transcriptional Regulator Hfq Binds Catalase HPII: Crystal Structure of the Complex
title_fullStr Post-Transcriptional Regulator Hfq Binds Catalase HPII: Crystal Structure of the Complex
title_full_unstemmed Post-Transcriptional Regulator Hfq Binds Catalase HPII: Crystal Structure of the Complex
title_short Post-Transcriptional Regulator Hfq Binds Catalase HPII: Crystal Structure of the Complex
title_sort post-transcriptional regulator hfq binds catalase hpii: crystal structure of the complex
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3819363/
https://www.ncbi.nlm.nih.gov/pubmed/24223139
http://dx.doi.org/10.1371/journal.pone.0078216
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