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PMID: 21602354 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Phenazine-1-carboxylic acid promotes bacterial biofilm development via ferrous iron acquisition.

Journal of bacteriology ·Vol. 193 ·No. 14 ·2011-07-00 ·Pages 3606-17

Wang Y, Wilks JC, Danhorn T, Ramos I, Croal L, Newman DK

Abstract

The opportunistic pathogen Pseudomonas aeruginosa forms biofilms, which render it more resistant to antimicrobial agents. Levels of iron in excess of what is required for planktonic growth have been shown to promote biofilm formation, and therapies that interfere with ferric iron [Fe(III)] uptake combined with antibiotics may help treat P. aeruginosa infections. However, use of these therapies presumes that iron is in the Fe(III) state in the context of infection. Here we report the ability of phenazine-1-carboxylic acid (PCA), a common phenazine made by all phenazine-producing pseudomonads, to help P. aeruginosa alleviate Fe(III) limitation by reducing Fe(III) to ferrous iron [Fe(II)]. In the presence of PCA, a P. aeruginosa mutant lacking the ability to produce the siderophores pyoverdine and pyochelin can still develop into a biofilm. As has been previously reported (P. K. Singh, M. R. Parsek, E. P. Greenberg, and M. J. Welsh, Nature 417:552-555, 2002), biofilm formation by the wild type is blocked by subinhibitory concentrations of the Fe(III)-binding innate-immunity protein conalbumin, but here we show that this blockage can be rescued by PCA. FeoB, an Fe(II) uptake protein, is required for PCA to enable this rescue. Unlike PCA, the phenazine pyocyanin (PYO) can facilitate biofilm formation via an iron-independent pathway. While siderophore-mediated Fe(III) uptake is undoubtedly important at early stages of infection, these results suggest that at later stages of infection, PCA present in infected tissues may shift the redox equilibrium between Fe(III) and Fe(II), thereby making iron more bioavailable.

MeSH Terms
Bacterial Proteins/genetics,metabolism Biofilms/growth & development Biological Transport Iron/metabolism Phenazines/metabolism Pseudomonas aeruginosa/genetics,growth & development,metabolism Siderophores/metabolism
Chemicals
Bacterial Proteins Phenazines Siderophores 1-phenazinecarboxylic acid Iron
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Wang Yun
Department of Biology, Department of Earth, and Howard Hughes Medical Institute,Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, Massachusetts 02139, USA. yun-wang@northwestern.edu
Wilks Jessica C
Danhorn Thomas
Ramos Itzel
Croal Laura
Newman Dianne K
References (75)
75 references, click to expand
  1. Bacterial heme sources: the role of heme, hemoprotein receptors and hemophores.
    Curr Opin Microbiol. 2000 Apr;3(2):215-20 PMID: 10744995
  2. Extracellular electron transfer.
    Cell Mol Life Sci. 2001 Oct;58(11):1562-71 PMID: 11706984
  3. Increased airway iron as a potential factor in the persistence of Pseudomonas aeruginosa infection in cystic fibrosis.
    Eur Respir J. 2007 Aug;30(2):286-92 PMID: 17504792
  4. Two simple media for the demonstration of pyocyanin and fluorescin.
    J Lab Clin Med. 1954 Aug;44(2):301-7 PMID: 13184240
  5. Loss of microbicidal activity and increased formation of biofilm due to decreased lactoferrin activity in patients with cystic fibrosis.
    J Infect Dis. 2004 Oct 1;190(7):1245-53 PMID: 15346334
  6. Influence of quorum sensing and iron on twitching motility and biofilm formation in Pseudomonas aeruginosa.
    J Bacteriol. 2008 Jan;190(2):662-71 PMID: 17993517
  7. Phenazines affect biofilm formation by Pseudomonas aeruginosa in similar ways at various scales.
    Res Microbiol. 2010 Apr;161(3):187-91 PMID: 20123017
  8. Genetic adaptation by Pseudomonas aeruginosa to the airways of cystic fibrosis patients.
    Proc Natl Acad Sci U S A. 2006 May 30;103(22):8487-92 PMID: 16687478
  9. Mini-Tn7 transposons for site-specific tagging of bacteria with fluorescent proteins.
    Environ Microbiol. 2004 Jul;6(7):726-32 PMID: 15186351
  10. Role of pyocyanin in the acquisition of iron from transferrin.
    Infect Immun. 1986 Apr;52(1):263-70 PMID: 2937736
  11. Measurement of Pseudomonas aeruginosa phenazine pigments in sputum and assessment of their contribution to sputum sol toxicity for respiratory epithelium.
    Infect Immun. 1988 Sep;56(9):2515-7 PMID: 3137173
  12. The potential of desferrioxamine-gallium as an anti-Pseudomonas therapeutic agent.
    Proc Natl Acad Sci U S A. 2008 Oct 28;105(43):16761-6 PMID: 18931304
  13. Biological control of soil-borne pathogens by fluorescent pseudomonads.
    Nat Rev Microbiol. 2005 Apr;3(4):307-19 PMID: 15759041
  14. The transition metal gallium disrupts Pseudomonas aeruginosa iron metabolism and has antimicrobial and antibiofilm activity.
    J Clin Invest. 2007 Apr;117(4):877-88 PMID: 17364024
  15. Cystic fibrosis sputum supports growth and cues key aspects of Pseudomonas aeruginosa physiology.
    J Bacteriol. 2005 Aug;187(15):5267-77 PMID: 16030221
  16. An ordered, nonredundant library of Pseudomonas aeruginosa strain PA14 transposon insertion mutants.
    Proc Natl Acad Sci U S A. 2006 Feb 21;103(8):2833-8 PMID: 16477005
  17. Quantification of biofilm structures by the novel computer program COMSTAT.
    Microbiology (Reading). 2000 Oct;146 ( Pt 10):2395-2407 PMID: 11021916
  18. Widespread pyocyanin over-production among isolates of a cystic fibrosis epidemic strain.
    BMC Microbiol. 2007 May 23;7:45 PMID: 17521417
  19. Cooperation and competition in pathogenic bacteria.
    Nature. 2004 Aug 26;430(7003):1024-7 PMID: 15329720
  20. Phenazines and other redox-active antibiotics promote microbial mineral reduction.
    Appl Environ Microbiol. 2004 Feb;70(2):921-8 PMID: 14766572
  21. High-performance liquid chromatography analyses of pyoverdin siderophores differentiate among phytopathogenic fluorescent Pseudomonas Species.
    Appl Environ Microbiol. 2003 Feb;69(2):1143-53 PMID: 12571041
  22. Identification of genes controlled by quorum sensing in Pseudomonas aeruginosa.
    Proc Natl Acad Sci U S A. 1999 Nov 23;96(24):13904-9 PMID: 10570171
  23. Common virulence factors for bacterial pathogenicity in plants and animals.
    Science. 1995 Jun 30;268(5219):1899-902 PMID: 7604262
  24. Pseudomonas fluorescens CHA0 produces enantio-pyochelin, the optical antipode of the Pseudomonas aeruginosa siderophore pyochelin.
    J Biol Chem. 2007 Dec 7;282(49):35546-53 PMID: 17938167
  25. The DeltaF508-CFTR mutation results in increased biofilm formation by Pseudomonas aeruginosa by increasing iron availability.
    Am J Physiol Lung Cell Mol Physiol. 2008 Jul;295(1):L25-37 PMID: 18359885
  26. Study of pyoverdine type and production by Pseudomonas aeruginosa isolated from cystic fibrosis patients: prevalence of type II pyoverdine isolates and accumulation of pyoverdine-negative mutations.
    Arch Microbiol. 2001 May;175(5):384-8 PMID: 11409549
  27. Tobramycin and FDA-approved iron chelators eliminate Pseudomonas aeruginosa biofilms on cystic fibrosis cells.
    Am J Respir Cell Mol Biol. 2009 Sep;41(3):305-13 PMID: 19168700
  28. Dihydroaeruginoic acid synthetase and pyochelin synthetase, products of the pchEF genes, are induced by extracellular pyochelin in Pseudomonas aeruginosa.
    Microbiology (Reading). 1998 Nov;144 ( Pt 11):3135-3148 PMID: 9846750
  29. Endogenous phenazine antibiotics promote anaerobic survival of Pseudomonas aeruginosa via extracellular electron transfer.
    J Bacteriol. 2010 Jan;192(1):365-9 PMID: 19880596
  30. Pyocyanin alters redox homeostasis and carbon flux through central metabolic pathways in Pseudomonas aeruginosa PA14.
    J Bacteriol. 2007 Sep;189(17):6372-81 PMID: 17526704
  31. Transferrin, the transferrin receptor, and the uptake of iron by cells.
    Met Ions Biol Syst. 1998;35:585-631 PMID: 9444770
  32. Mechanism of the antibiotic action pyocyanine.
    J Bacteriol. 1980 Jan;141(1):156-63 PMID: 6243619
  33. The interaction between pyoverdin and its outer membrane receptor in Pseudomonas aeruginosa leads to different conformers: a time-resolved fluorescence study.
    Biochemistry. 2002 Dec 10;41(49):14591-601 PMID: 12463759
  34. Burkholderia spp. alter Pseudomonas aeruginosa physiology through iron sequestration.
    J Bacteriol. 2004 Apr;186(8):2376-84 PMID: 15060040
  35. Phenazine compounds in fluorescent Pseudomonas spp. biosynthesis and regulation.
    Annu Rev Phytopathol. 2006;44:417-45 PMID: 16719720
  36. A simple and efficient procedure for transformation of yeasts.
    Biotechniques. 1992 Jul;13(1):18-20 PMID: 1503765
  37. Maintenance of broad-host-range incompatibility group P and group Q plasmids and transposition of Tn5 in Bartonella henselae following conjugal plasmid transfer from Escherichia coli.
    J Bacteriol. 1997 Jan;179(2):538-40 PMID: 8990308
  38. Development of an oligonucleotide array for direct detection of fungi in sputum samples from patients with cystic fibrosis.
    J Clin Microbiol. 2009 Jan;47(1):142-52 PMID: 19020057
  39. Redox-active antibiotics control gene expression and community behavior in divergent bacteria.
    Science. 2008 Aug 29;321(5893):1203-6 PMID: 18755976
  40. Role of lung iron in determining the bacterial and host struggle in cystic fibrosis.
    Am J Physiol Lung Cell Mol Physiol. 2009 Nov;297(5):L795-802 PMID: 19700646
  41. Effects of reduced mucus oxygen concentration in airway Pseudomonas infections of cystic fibrosis patients.
    J Clin Invest. 2002 Feb;109(3):317-25 PMID: 11827991
  42. Periodic iron nanomineralization in human serum transferrin fibrils.
    Angew Chem Int Ed Engl. 2008;47(12):2217-21 PMID: 18256996
  43. Redox reactions of phenazine antibiotics with ferric (hydr)oxides and molecular oxygen.
    Environ Sci Technol. 2008 Apr 1;42(7):2380-6 PMID: 18504969
  44. Helicobacter pylori ribBA-mediated riboflavin production is involved in iron acquisition.
    J Bacteriol. 1998 Mar;180(6):1473-9 PMID: 9515916
  45. Iron and Pseudomonas aeruginosa biofilm formation.
    Proc Natl Acad Sci U S A. 2005 Aug 2;102(31):11076-81 PMID: 16043697
  46. The role of pyocyanin in Pseudomonas aeruginosa infection.
    Trends Mol Med. 2004 Dec;10(12):599-606 PMID: 15567330
  47. Differential effects of mutations in tonB1 on intrinsic multidrug resistance and iron acquisition in Pseudomonas aeruginosa.
    J Bacteriol. 2002 Apr;184(7):2045-9 PMID: 11889114
  48. Motility and chemotaxis in Agrobacterium tumefaciens surface attachment and biofilm formation.
    J Bacteriol. 2007 Nov;189(22):8005-14 PMID: 17766409
  49. Iron metabolism in pathogenic bacteria.
    Annu Rev Microbiol. 2000;54:881-941 PMID: 11018148
  50. Metal trafficking via siderophores in Gram-negative bacteria: specificities and characteristics of the pyoverdine pathway.
    J Inorg Biochem. 2008 May-Jun;102(5-6):1159-69 PMID: 18221784
  51. Role of a phenazine antibiotic from Pseudomonas fluorescens in biological control of Gaeumannomyces graminis var. tritici.
    J Bacteriol. 1988 Aug;170(8):3499-508 PMID: 2841289
  52. Saccharomyces cerevisiae-based molecular tool kit for manipulation of genes from gram-negative bacteria.
    Appl Environ Microbiol. 2006 Jul;72(7):5027-36 PMID: 16820502
  53. Cloning and nucleotide sequence of the pvdA gene encoding the pyoverdin biosynthetic enzyme L-ornithine N5-oxygenase in Pseudomonas aeruginosa.
    J Bacteriol. 1994 Feb;176(4):1128-40 PMID: 8106324
  54. A component of innate immunity prevents bacterial biofilm development.
    Nature. 2002 May 30;417(6888):552-5 PMID: 12037568
  55. Feo--transport of ferrous iron into bacteria.
    Biometals. 2006 Apr;19(2):143-57 PMID: 16718600
  56. The role of the cytoplasmic heme-binding protein (PhuS) of Pseudomonas aeruginosa in intracellular heme trafficking and iron homeostasis.
    J Biol Chem. 2009 Jan 2;284(1):56-66 PMID: 18990702
  57. The secreted pyomelanin pigment of Legionella pneumophila confers ferric reductase activity.
    Infect Immun. 2007 Aug;75(8):4062-70 PMID: 17548481
  58. An improved Tn7-based system for the single-copy insertion of cloned genes into chromosomes of gram-negative bacteria.
    Gene. 1991 Dec 20;109(1):167-8 PMID: 1661697
  59. Chemistry for an essential biological process: the reduction of ferric iron.
    Biometals. 2002 Dec;15(4):341-6 PMID: 12405527
  60. Genetics and regulation of two distinct haem-uptake systems, phu and has, in Pseudomonas aeruginosa.
    Microbiology (Reading). 2000 Jan;146 ( Pt 1):185-198 PMID: 10658665
  61. Yeast recombination: the association between double-strand gap repair and crossing-over.
    Proc Natl Acad Sci U S A. 1983 Jul;80(14):4417-21 PMID: 6308623
  62. Shewanella secretes flavins that mediate extracellular electron transfer.
    Proc Natl Acad Sci U S A. 2008 Mar 11;105(10):3968-73 PMID: 18316736
  63. Iron acquisition and its control in Pseudomonas aeruginosa: many roads lead to Rome.
    Front Biosci. 2003 May 01;8:d661-86 PMID: 12700066
  64. Bacterial biofilms: a common cause of persistent infections.
    Science. 1999 May 21;284(5418):1318-22 PMID: 10334980
  65. Iron availability influences aggregation, biofilm, adhesion and invasion of Pseudomonas aeruginosa and Burkholderia cenocepacia.
    Int J Immunopathol Pharmacol. 2005 Oct-Dec;18(4):661-70 PMID: 16388713
  66. Staphylococcus aureus serves as an iron source for Pseudomonas aeruginosa during in vivo coculture.
    J Bacteriol. 2005 Jan;187(2):554-66 PMID: 15629927
  67. Portability of oxidase domains in nonribosomal peptide synthetase modules.
    Biochemistry. 2004 Dec 21;43(50):15946-55 PMID: 15595851
  68. Studying bacterial infections through culture-independent approaches.
    J Med Microbiol. 2009 Nov;58(Pt 11):1401-1418 PMID: 19556372
  69. Microbial ecology of the cystic fibrosis lung.
    Microbiology (Reading). 2007 Apr;153(Pt 4):917-923 PMID: 17379702
  70. The phenazine pyocyanin is a terminal signalling factor in the quorum sensing network of Pseudomonas aeruginosa.
    Mol Microbiol. 2006 Sep;61(5):1308-21 PMID: 16879411
  71. Rethinking 'secondary' metabolism: physiological roles for phenazine antibiotics.
    Nat Chem Biol. 2006 Feb;2(2):71-8 PMID: 16421586
  72. A panel of Tn7-based vectors for insertion of the gfp marker gene or for delivery of cloned DNA into Gram-negative bacteria at a neutral chromosomal site.
    J Microbiol Methods. 2001 Jul;45(3):187-95 PMID: 11348676
  73. Molecular mechanisms of bacterial virulence elucidated using a Pseudomonas aeruginosa-Caenorhabditis elegans pathogenesis model.
    Cell. 1999 Jan 8;96(1):47-56 PMID: 9989496
  74. Citrate-mediated iron uptake in Pseudomonas aeruginosa: involvement of the citrate-inducible FecA receptor and the FeoB ferrous iron transporter.
    Microbiology (Reading). 2009 Jan;155(Pt 1):305-315 PMID: 19118371
  75. Pseudomonas aeruginosa pyocyanin is critical for lung infection in mice.
    Infect Immun. 2004 Jul;72(7):4275-8 PMID: 15213173
Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
1098-5530
Published
2011-07-00
Epub
2011-00-20
Pages
3606-17
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC3133341
Subset
IM
Grants
Howard Hughes Medical Institute · United States
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