<it>Campylobacter jejuni dsb </it>gene expression is regulated by iron in a Fur-dependent manner and by a translational coupling mechanism

<p>Abstract</p> <p>Background</p> <p>Many bacterial extracytoplasmic proteins are stabilized by intramolecular disulfide bridges that are formed post-translationally between their cysteine residues. This protein modification plays an important role in bacterial pathogen...

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Main Authors: Grabowska Anna D, Wandel Michał P, Łasica Anna M, Nesteruk Monika, Roszczenko Paula, Wyszyńska Agnieszka, Godlewska Renata, Jagusztyn-Krynicka Elzbieta K
Format: Article
Language:English
Published: BMC 2011-07-01
Series:BMC Microbiology
Online Access:http://www.biomedcentral.com/1471-2180/11/166
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spelling doaj-66f3784c90f04632bed66e262261b3ba2020-11-24T23:15:51ZengBMCBMC Microbiology1471-21802011-07-0111116610.1186/1471-2180-11-166<it>Campylobacter jejuni dsb </it>gene expression is regulated by iron in a Fur-dependent manner and by a translational coupling mechanismGrabowska Anna DWandel Michał PŁasica Anna MNesteruk MonikaRoszczenko PaulaWyszyńska AgnieszkaGodlewska RenataJagusztyn-Krynicka Elzbieta K<p>Abstract</p> <p>Background</p> <p>Many bacterial extracytoplasmic proteins are stabilized by intramolecular disulfide bridges that are formed post-translationally between their cysteine residues. This protein modification plays an important role in bacterial pathogenesis, and is facilitated by the Dsb (disulfide bond) family of the redox proteins. These proteins function in two parallel pathways in the periplasmic space: an oxidation pathway and an isomerization pathway. The Dsb oxidative pathway in <it>Campylobacter jejuni </it>is more complex than the one in the laboratory <it>E. coli </it>K-12 strain.</p> <p>Results</p> <p>In the <it>C. jejuni </it>81-176 genome, the <it>dsb </it>genes of the oxidative pathway are arranged in three transcriptional units: <it>dsbA2</it>-<it>dsbB</it>-<it>astA, dsbA1 </it>and <it>dba</it>-<it>dsbI</it>. Their transcription responds to an environmental stimulus - iron availability - and is regulated in a Fur-dependent manner. Fur involvement in <it>dsb </it>gene regulation was proven by a reporter gene study in a <it>C. jejuni </it>wild type strain and its isogenic <it>fur </it>mutant. An electrophoretic mobility shift assay (EMSA) confirmed that analyzed genes are members of the Fur regulon but each of them is regulated by a disparate mechanism, and both the iron-free and the iron-complexed Fur are able to bind <it>in vitro </it>to the <it>C. jejuni </it>promoter regions. This study led to identification of a new iron- and Fur-regulated promoter that drives <it>dsbA1 </it>gene expression in an indirect way. Moreover, the present work documents that synthesis of DsbI oxidoreductase is controlled by the mechanism of translational coupling. The importance of a secondary <it>dba-dsbI </it>mRNA structure for <it>dsbI </it>mRNA translation was verified by estimating individual <it>dsbI </it>gene expression from its own promoter.</p> <p>Conclusions</p> <p>The present work shows that iron concentration is a significant factor in <it>dsb </it>gene transcription. These results support the concept that iron concentration - also through its influence on <it>dsb </it>gene expression - might control the abundance of extracytoplasmic proteins during different stages of infection. Our work further shows that synthesis of the DsbI membrane oxidoreductase is controlled by a translational coupling mechanism. The <it>dba </it>expression is not only essential for the translation of the downstream <it>dsbI </it>gene, but also Dba protein that is produced might regulate the activity and/or stability of DsbI.</p> http://www.biomedcentral.com/1471-2180/11/166
collection DOAJ
language English
format Article
sources DOAJ
author Grabowska Anna D
Wandel Michał P
Łasica Anna M
Nesteruk Monika
Roszczenko Paula
Wyszyńska Agnieszka
Godlewska Renata
Jagusztyn-Krynicka Elzbieta K
spellingShingle Grabowska Anna D
Wandel Michał P
Łasica Anna M
Nesteruk Monika
Roszczenko Paula
Wyszyńska Agnieszka
Godlewska Renata
Jagusztyn-Krynicka Elzbieta K
<it>Campylobacter jejuni dsb </it>gene expression is regulated by iron in a Fur-dependent manner and by a translational coupling mechanism
BMC Microbiology
author_facet Grabowska Anna D
Wandel Michał P
Łasica Anna M
Nesteruk Monika
Roszczenko Paula
Wyszyńska Agnieszka
Godlewska Renata
Jagusztyn-Krynicka Elzbieta K
author_sort Grabowska Anna D
title <it>Campylobacter jejuni dsb </it>gene expression is regulated by iron in a Fur-dependent manner and by a translational coupling mechanism
title_short <it>Campylobacter jejuni dsb </it>gene expression is regulated by iron in a Fur-dependent manner and by a translational coupling mechanism
title_full <it>Campylobacter jejuni dsb </it>gene expression is regulated by iron in a Fur-dependent manner and by a translational coupling mechanism
title_fullStr <it>Campylobacter jejuni dsb </it>gene expression is regulated by iron in a Fur-dependent manner and by a translational coupling mechanism
title_full_unstemmed <it>Campylobacter jejuni dsb </it>gene expression is regulated by iron in a Fur-dependent manner and by a translational coupling mechanism
title_sort <it>campylobacter jejuni dsb </it>gene expression is regulated by iron in a fur-dependent manner and by a translational coupling mechanism
publisher BMC
series BMC Microbiology
issn 1471-2180
publishDate 2011-07-01
description <p>Abstract</p> <p>Background</p> <p>Many bacterial extracytoplasmic proteins are stabilized by intramolecular disulfide bridges that are formed post-translationally between their cysteine residues. This protein modification plays an important role in bacterial pathogenesis, and is facilitated by the Dsb (disulfide bond) family of the redox proteins. These proteins function in two parallel pathways in the periplasmic space: an oxidation pathway and an isomerization pathway. The Dsb oxidative pathway in <it>Campylobacter jejuni </it>is more complex than the one in the laboratory <it>E. coli </it>K-12 strain.</p> <p>Results</p> <p>In the <it>C. jejuni </it>81-176 genome, the <it>dsb </it>genes of the oxidative pathway are arranged in three transcriptional units: <it>dsbA2</it>-<it>dsbB</it>-<it>astA, dsbA1 </it>and <it>dba</it>-<it>dsbI</it>. Their transcription responds to an environmental stimulus - iron availability - and is regulated in a Fur-dependent manner. Fur involvement in <it>dsb </it>gene regulation was proven by a reporter gene study in a <it>C. jejuni </it>wild type strain and its isogenic <it>fur </it>mutant. An electrophoretic mobility shift assay (EMSA) confirmed that analyzed genes are members of the Fur regulon but each of them is regulated by a disparate mechanism, and both the iron-free and the iron-complexed Fur are able to bind <it>in vitro </it>to the <it>C. jejuni </it>promoter regions. This study led to identification of a new iron- and Fur-regulated promoter that drives <it>dsbA1 </it>gene expression in an indirect way. Moreover, the present work documents that synthesis of DsbI oxidoreductase is controlled by the mechanism of translational coupling. The importance of a secondary <it>dba-dsbI </it>mRNA structure for <it>dsbI </it>mRNA translation was verified by estimating individual <it>dsbI </it>gene expression from its own promoter.</p> <p>Conclusions</p> <p>The present work shows that iron concentration is a significant factor in <it>dsb </it>gene transcription. These results support the concept that iron concentration - also through its influence on <it>dsb </it>gene expression - might control the abundance of extracytoplasmic proteins during different stages of infection. Our work further shows that synthesis of the DsbI membrane oxidoreductase is controlled by a translational coupling mechanism. The <it>dba </it>expression is not only essential for the translation of the downstream <it>dsbI </it>gene, but also Dba protein that is produced might regulate the activity and/or stability of DsbI.</p>
url http://www.biomedcentral.com/1471-2180/11/166
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