Cargando…

Oxygen limitation modulates pH regulation of catabolism and hydrogenases, multidrug transporters, and envelope composition in Escherichia coli K-12

BACKGROUND: In Escherichia coli, pH regulates genes for amino-acid and sugar catabolism, electron transport, oxidative stress, periplasmic and envelope proteins. Many pH-dependent genes are co-regulated by anaerobiosis, but the overall intersection of pH stress and oxygen limitation has not been inv...

Descripción completa

Detalles Bibliográficos
Autores principales: Hayes, Everett T, Wilks, Jessica C, Sanfilippo, Piero, Yohannes, Elizabeth, Tate, Daniel P, Jones, Brian D, Radmacher, Michael D, BonDurant, Sandra S, Slonczewski, Joan L
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2006
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1626474/
https://www.ncbi.nlm.nih.gov/pubmed/17026754
http://dx.doi.org/10.1186/1471-2180-6-89
_version_ 1782130606023376896
author Hayes, Everett T
Wilks, Jessica C
Sanfilippo, Piero
Yohannes, Elizabeth
Tate, Daniel P
Jones, Brian D
Radmacher, Michael D
BonDurant, Sandra S
Slonczewski, Joan L
author_facet Hayes, Everett T
Wilks, Jessica C
Sanfilippo, Piero
Yohannes, Elizabeth
Tate, Daniel P
Jones, Brian D
Radmacher, Michael D
BonDurant, Sandra S
Slonczewski, Joan L
author_sort Hayes, Everett T
collection PubMed
description BACKGROUND: In Escherichia coli, pH regulates genes for amino-acid and sugar catabolism, electron transport, oxidative stress, periplasmic and envelope proteins. Many pH-dependent genes are co-regulated by anaerobiosis, but the overall intersection of pH stress and oxygen limitation has not been investigated. RESULTS: The pH dependence of gene expression was analyzed in oxygen-limited cultures of E. coli K-12 strain W3110. E. coli K-12 strain W3110 was cultured in closed tubes containing LBK broth buffered at pH 5.7, pH 7.0, and pH 8.5. Affymetrix array hybridization revealed pH-dependent expression of 1,384 genes and 610 intergenic regions. A core group of 251 genes showed pH responses similar to those in a previous study of cultures grown with aeration. The highly acid-induced gene yagU was shown to be required for extreme-acid resistance (survival at pH 2). Acid also up-regulated fimbriae (fimAC), periplasmic chaperones (hdeAB), cyclopropane fatty acid synthase (cfa), and the "constitutive" Na+/H+ antiporter (nhaB). Base up-regulated core genes for maltodextrin transport (lamB, mal), ATP synthase (atp), and DNA repair (recA, mutL). Other genes showed opposite pH responses with or without aeration, for example ETS components (cyo,nuo, sdh) and hydrogenases (hya, hyb, hyc, hyf, hyp). A hypF strain lacking all hydrogenase activity showed loss of extreme-acid resistance. Under oxygen limitation only, acid down-regulated ribosome synthesis (rpl,rpm, rps). Acid up-regulated the catabolism of sugar derivatives whose fermentation minimized acid production (gnd, gnt, srl), and also a cluster of 13 genes in the gadA region. Acid up-regulated drug transporters (mdtEF, mdtL), but down-regulated penicillin-binding proteins (dacACD, mreBC). Intergenic regions containing regulatory sRNAs were up-regulated by acid (ryeA, csrB, gadY, rybC). CONCLUSION: pH regulates a core set of genes independently of oxygen, including yagU, fimbriae, periplasmic chaperones, and nhaB. Under oxygen limitation, however, pH regulation is reversed for genes encoding electron transport components and hydrogenases. Extreme-acid resistance requires yagU and hydrogenase production. Ribosome synthesis is down-regulated at low pH under oxygen limitation, possibly due to the restricted energy yield of catabolism. Under oxygen limitation, pH regulates metabolism and transport so as to maximize alternative catabolic options while minimizing acidification or alkalinization of the cytoplasm.
format Text
id pubmed-1626474
institution National Center for Biotechnology Information
language English
publishDate 2006
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-16264742006-10-28 Oxygen limitation modulates pH regulation of catabolism and hydrogenases, multidrug transporters, and envelope composition in Escherichia coli K-12 Hayes, Everett T Wilks, Jessica C Sanfilippo, Piero Yohannes, Elizabeth Tate, Daniel P Jones, Brian D Radmacher, Michael D BonDurant, Sandra S Slonczewski, Joan L BMC Microbiol Research Article BACKGROUND: In Escherichia coli, pH regulates genes for amino-acid and sugar catabolism, electron transport, oxidative stress, periplasmic and envelope proteins. Many pH-dependent genes are co-regulated by anaerobiosis, but the overall intersection of pH stress and oxygen limitation has not been investigated. RESULTS: The pH dependence of gene expression was analyzed in oxygen-limited cultures of E. coli K-12 strain W3110. E. coli K-12 strain W3110 was cultured in closed tubes containing LBK broth buffered at pH 5.7, pH 7.0, and pH 8.5. Affymetrix array hybridization revealed pH-dependent expression of 1,384 genes and 610 intergenic regions. A core group of 251 genes showed pH responses similar to those in a previous study of cultures grown with aeration. The highly acid-induced gene yagU was shown to be required for extreme-acid resistance (survival at pH 2). Acid also up-regulated fimbriae (fimAC), periplasmic chaperones (hdeAB), cyclopropane fatty acid synthase (cfa), and the "constitutive" Na+/H+ antiporter (nhaB). Base up-regulated core genes for maltodextrin transport (lamB, mal), ATP synthase (atp), and DNA repair (recA, mutL). Other genes showed opposite pH responses with or without aeration, for example ETS components (cyo,nuo, sdh) and hydrogenases (hya, hyb, hyc, hyf, hyp). A hypF strain lacking all hydrogenase activity showed loss of extreme-acid resistance. Under oxygen limitation only, acid down-regulated ribosome synthesis (rpl,rpm, rps). Acid up-regulated the catabolism of sugar derivatives whose fermentation minimized acid production (gnd, gnt, srl), and also a cluster of 13 genes in the gadA region. Acid up-regulated drug transporters (mdtEF, mdtL), but down-regulated penicillin-binding proteins (dacACD, mreBC). Intergenic regions containing regulatory sRNAs were up-regulated by acid (ryeA, csrB, gadY, rybC). CONCLUSION: pH regulates a core set of genes independently of oxygen, including yagU, fimbriae, periplasmic chaperones, and nhaB. Under oxygen limitation, however, pH regulation is reversed for genes encoding electron transport components and hydrogenases. Extreme-acid resistance requires yagU and hydrogenase production. Ribosome synthesis is down-regulated at low pH under oxygen limitation, possibly due to the restricted energy yield of catabolism. Under oxygen limitation, pH regulates metabolism and transport so as to maximize alternative catabolic options while minimizing acidification or alkalinization of the cytoplasm. BioMed Central 2006-10-06 /pmc/articles/PMC1626474/ /pubmed/17026754 http://dx.doi.org/10.1186/1471-2180-6-89 Text en Copyright © 2006 Hayes et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Hayes, Everett T
Wilks, Jessica C
Sanfilippo, Piero
Yohannes, Elizabeth
Tate, Daniel P
Jones, Brian D
Radmacher, Michael D
BonDurant, Sandra S
Slonczewski, Joan L
Oxygen limitation modulates pH regulation of catabolism and hydrogenases, multidrug transporters, and envelope composition in Escherichia coli K-12
title Oxygen limitation modulates pH regulation of catabolism and hydrogenases, multidrug transporters, and envelope composition in Escherichia coli K-12
title_full Oxygen limitation modulates pH regulation of catabolism and hydrogenases, multidrug transporters, and envelope composition in Escherichia coli K-12
title_fullStr Oxygen limitation modulates pH regulation of catabolism and hydrogenases, multidrug transporters, and envelope composition in Escherichia coli K-12
title_full_unstemmed Oxygen limitation modulates pH regulation of catabolism and hydrogenases, multidrug transporters, and envelope composition in Escherichia coli K-12
title_short Oxygen limitation modulates pH regulation of catabolism and hydrogenases, multidrug transporters, and envelope composition in Escherichia coli K-12
title_sort oxygen limitation modulates ph regulation of catabolism and hydrogenases, multidrug transporters, and envelope composition in escherichia coli k-12
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1626474/
https://www.ncbi.nlm.nih.gov/pubmed/17026754
http://dx.doi.org/10.1186/1471-2180-6-89
work_keys_str_mv AT hayeseverettt oxygenlimitationmodulatesphregulationofcatabolismandhydrogenasesmultidrugtransportersandenvelopecompositioninescherichiacolik12
AT wilksjessicac oxygenlimitationmodulatesphregulationofcatabolismandhydrogenasesmultidrugtransportersandenvelopecompositioninescherichiacolik12
AT sanfilippopiero oxygenlimitationmodulatesphregulationofcatabolismandhydrogenasesmultidrugtransportersandenvelopecompositioninescherichiacolik12
AT yohanneselizabeth oxygenlimitationmodulatesphregulationofcatabolismandhydrogenasesmultidrugtransportersandenvelopecompositioninescherichiacolik12
AT tatedanielp oxygenlimitationmodulatesphregulationofcatabolismandhydrogenasesmultidrugtransportersandenvelopecompositioninescherichiacolik12
AT jonesbriand oxygenlimitationmodulatesphregulationofcatabolismandhydrogenasesmultidrugtransportersandenvelopecompositioninescherichiacolik12
AT radmachermichaeld oxygenlimitationmodulatesphregulationofcatabolismandhydrogenasesmultidrugtransportersandenvelopecompositioninescherichiacolik12
AT bondurantsandras oxygenlimitationmodulatesphregulationofcatabolismandhydrogenasesmultidrugtransportersandenvelopecompositioninescherichiacolik12
AT slonczewskijoanl oxygenlimitationmodulatesphregulationofcatabolismandhydrogenasesmultidrugtransportersandenvelopecompositioninescherichiacolik12