Characterization of the <it>Shewanella oneidensis</it> Fur gene: roles in iron and acid tolerance response

<p>Abstract</p> <p>Background</p> <p>Iron homeostasis is a key metabolism for most organisms. In many bacterial species, coordinate regulation of iron homeostasis depends on the protein product of a Fur gene. Fur also plays roles in virulence, acid tolerance, redox-stre...

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Main Authors: Wu Liyou, Luo Feng, Harris Daniel P, Yang Yunfeng, Parsons Andrea B, Palumbo Anthony V, Zhou Jizhong
Format: Article
Language:English
Published: BMC 2008-03-01
Series:BMC Genomics
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spelling doaj-a4a0de1f6b4b4e2fa88eec9ec79503de2020-11-25T00:01:32ZengBMCBMC Genomics1471-21642008-03-019Suppl 1S1110.1186/1471-2164-9-S1-S11Characterization of the <it>Shewanella oneidensis</it> Fur gene: roles in iron and acid tolerance responseWu LiyouLuo FengHarris Daniel PYang YunfengParsons Andrea BPalumbo Anthony VZhou Jizhong<p>Abstract</p> <p>Background</p> <p>Iron homeostasis is a key metabolism for most organisms. In many bacterial species, coordinate regulation of iron homeostasis depends on the protein product of a Fur gene. Fur also plays roles in virulence, acid tolerance, redox-stress responses, flagella chemotaxis and metabolic pathways.</p> <p>Results</p> <p>We conducted physiological and transcriptomic studies to characterize Fur in <it>Shewanella oneidensis</it>, with regard to its roles in iron and acid tolerance response. A <it>S. oneidensis</it><it>fur</it> deletion mutant was defective in growth under iron-abundant or acidic environment. However, it coped with iron depletion better than the wild-type strain MR-1. Further gene expression studies by microarray of the <it>fur</it> mutant confirmed previous findings that iron uptake genes were highly de-repressed in the mutant. Intriguingly, a large number of genes involved in energy metabolism were iron-responsive but Fur-independent, suggesting an intimate relationship of energy metabolism to iron response, but not to Fur. Further characterization of these genes in energy metabolism suggested that they might be controlled by transcriptional factor Crp, as shown by an enriched motif searching algorithm in the corresponding cluster of a gene co-expression network.</p> <p>Conclusion</p> <p>This work demonstrates that <it>S. oneidensis</it> Fur is involved in iron acquisition and acid tolerance response. In addition, analyzing genome-wide transcriptional profiles provides useful information for the characterization of Fur and iron response in <it>S. oneidensis</it>.</p>
collection DOAJ
language English
format Article
sources DOAJ
author Wu Liyou
Luo Feng
Harris Daniel P
Yang Yunfeng
Parsons Andrea B
Palumbo Anthony V
Zhou Jizhong
spellingShingle Wu Liyou
Luo Feng
Harris Daniel P
Yang Yunfeng
Parsons Andrea B
Palumbo Anthony V
Zhou Jizhong
Characterization of the <it>Shewanella oneidensis</it> Fur gene: roles in iron and acid tolerance response
BMC Genomics
author_facet Wu Liyou
Luo Feng
Harris Daniel P
Yang Yunfeng
Parsons Andrea B
Palumbo Anthony V
Zhou Jizhong
author_sort Wu Liyou
title Characterization of the <it>Shewanella oneidensis</it> Fur gene: roles in iron and acid tolerance response
title_short Characterization of the <it>Shewanella oneidensis</it> Fur gene: roles in iron and acid tolerance response
title_full Characterization of the <it>Shewanella oneidensis</it> Fur gene: roles in iron and acid tolerance response
title_fullStr Characterization of the <it>Shewanella oneidensis</it> Fur gene: roles in iron and acid tolerance response
title_full_unstemmed Characterization of the <it>Shewanella oneidensis</it> Fur gene: roles in iron and acid tolerance response
title_sort characterization of the <it>shewanella oneidensis</it> fur gene: roles in iron and acid tolerance response
publisher BMC
series BMC Genomics
issn 1471-2164
publishDate 2008-03-01
description <p>Abstract</p> <p>Background</p> <p>Iron homeostasis is a key metabolism for most organisms. In many bacterial species, coordinate regulation of iron homeostasis depends on the protein product of a Fur gene. Fur also plays roles in virulence, acid tolerance, redox-stress responses, flagella chemotaxis and metabolic pathways.</p> <p>Results</p> <p>We conducted physiological and transcriptomic studies to characterize Fur in <it>Shewanella oneidensis</it>, with regard to its roles in iron and acid tolerance response. A <it>S. oneidensis</it><it>fur</it> deletion mutant was defective in growth under iron-abundant or acidic environment. However, it coped with iron depletion better than the wild-type strain MR-1. Further gene expression studies by microarray of the <it>fur</it> mutant confirmed previous findings that iron uptake genes were highly de-repressed in the mutant. Intriguingly, a large number of genes involved in energy metabolism were iron-responsive but Fur-independent, suggesting an intimate relationship of energy metabolism to iron response, but not to Fur. Further characterization of these genes in energy metabolism suggested that they might be controlled by transcriptional factor Crp, as shown by an enriched motif searching algorithm in the corresponding cluster of a gene co-expression network.</p> <p>Conclusion</p> <p>This work demonstrates that <it>S. oneidensis</it> Fur is involved in iron acquisition and acid tolerance response. In addition, analyzing genome-wide transcriptional profiles provides useful information for the characterization of Fur and iron response in <it>S. oneidensis</it>.</p>
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