Nitric oxide-mediated dispersal in single- and multi-species biofilms of clinically and industrially relevant microorganisms

Nicolas Barraud, Michael V Storey, Zoe P Moore, Jeremy S Webb, Scott A Rice, Staffan Kjelleberg, Nicolas Barraud, Michael V Storey, Zoe P Moore, Jeremy S Webb, Scott A Rice, Staffan Kjelleberg

Abstract

Strategies to induce biofilm dispersal are of interest due to their potential to prevent biofilm formation and biofilm-related infections. Nitric oxide (NO), an important messenger molecule in biological systems, was previously identified as a signal for dispersal in biofilms of the model organism Pseudomonas aeruginosa. In the present study, the use of NO as an anti-biofilm agent more broadly was assessed. Various NO donors, at concentrations estimated to generate NO levels in the picomolar and low nanomolar range, were tested on single-species biofilms of relevant microorganisms and on multi-species biofilms from water distribution and treatment systems. Nitric oxide-induced dispersal was observed in all biofilms assessed, and the average reduction of total biofilm surface was 63%. Moreover, biofilms exposed to low doses of NO were more susceptible to antimicrobial treatments than untreated biofilms. For example, the efficacy of conventional chlorine treatments at removing multi-species biofilms from water systems was increased by 20-fold in biofilms treated with NO compared with untreated biofilms. These data suggest that combined treatments with NO may allow for novel and improved strategies to control biofilms and have widespread applications in many environmental, industrial and clinical settings.

© 2009 The Authors; Journal compilation © 2009 Society for Applied Microbiology and Blackwell Publishing Ltd.

Figures

Figure 1
Figure 1
Nitric oxide release profiles from the NO donor SNP. After the NO baseline signal was stabilized for at least 30 min in the PBS solution, SNP was added (arrow) at final concentrations of (a) 250 µM, (b) 500 µM and (c) 1 mM and the amount of NO released was quantified by using the NO electrode. The inset shows the linear relationship between SNP concentration (mM, x‐axis) and NO increase (µM, y‐axis); error bars indicate standard deviation (n = 3).
Figure 2
Figure 2
Nitric oxide effect on V. cholerae biofilm antimicrobial sensitivity. Pre‐established V. cholerae biofilms were treated for 24 h in the presence or absence of the NO donor SNP, and/or the antibiotic tetracycline (Tet) at 14 µM. Biofilm cells remaining on the slides were stained with SYTO 9 to allow analysis using fluorescence microscopy and quantification (per cent surface coverage) using digital image analysis. Data are mean values and error bars indicate standard error (n = 3).
Figure 3
Figure 3
Effect of NO on multi‐species biofilms established from water distribution systems. Three‐month‐old biofilms from recycled and potable water distribution systems were exposed to 0 (control), 100 nM and 500 nM SNP for 18 h and then (recycled water biofilms) treated for 10 min with free chlorine (HOCl) at 0.5 ppm and 1 ppm and no chlorine controls. (A) The images show microscopic pictures of recycled water biofilms after 1 ppm HOCl exposure (lower panels) or no chlorine controls (upper panels) and stained with the LIVE/DEAD reagents. Live cells appear green, dead cells appear red. Bar, 50 µm. Viability analyses of the biofilms were assessed by heterotrophic colony‐forming units (cfu) measurements of (B) recycled water biofilms and (C) potable water biofilms. Data are mean values and error bars indicate standard error (n = 3).
Figure 4
Figure 4
Multi‐species biofilms on a RO filtration membrane exposed to SNP or the fast NO donor PROLI in combination with chlorine.
A. Reverse osmosis membrane coupons harbouring multi‐species biofilms were treated: (i) in the presence or absence of 100 nM SNP and subsequently exposed to 5 ppm HOCl for 10 min; or (ii) simultaneously in the presence or absence of 20 nM or 500 nM PROLI and/or free chlorine at 5 ppm or 10 ppm for 2 h. Biofilms were analysed by performing cfu counts. Data are mean values and error bars indicate standard error (n ≥ 3).
B. Nitric oxide release profiles from PROLI in water. (a) Control, (b) 625 nM, (c) 1.25 µM and (d) 2.5 µM PROLI. Arrows indicate addition of NO scavenger PTIO (100 µM) to the solutions.

References

    1. Adak S., Aulak K.S., Stuehr D.J. Direct evidence for nitric oxide production by a nitric‐oxide synthase‐like protein from Bacillus subtilis. J Biol Chem. 2002;277:16167–16171.
    1. Barraud N., Hassett D.J., Hwang S.H., Rice S.A., Kjelleberg S., Webb J.S. Involvement of nitric oxide in biofilm dispersal of Pseudomonas aeruginosa. J Bacteriol. 2006;188:7344–7353.
    1. Bishop C.D., Brandhorst B.P. On nitric oxide signaling, metamorphosis, and the evolution of biphasic life cycles. Evol Dev. 2003;5:542–550.
    1. Buckingham‐Meyer K., Goeres D.M., Hamilton M.A. Comparative evaluation of biofilm disinfectant efficacy tests. J Microbiol Methods. 2007;70:236–244.
    1. Coetser S.E., Cloete T.E. Biofouling and biocorrosion in industrial water systems. Crit Rev Microbiol. 2005;31:213–232.
    1. Costerton J.W., Lewandowski Z., Caldwell D.E., Korber D.R., Lappin‐Scott H.M. Microbial biofilms. Annu Rev Microbiol. 1995;49:711–745.
    1. Darling K.E., Evans T.J. Effects of nitric oxide on Pseudomonas aeruginosa infection of epithelial cells from a human respiratory cell line derived from a patient with cystic fibrosis. Infect Immun. 2003;71:2341–2349.
    1. Delgado‐Nixon V.M., Gonzalez G., Gilles‐Gonzalez M.A. Dos, a heme‐binding PAS protein from Escherichia coli, is a direct oxygen sensor. Biochemistry. 2000;39:2685–2691.
    1. Dromigny J.A., Rakoto‐Alson O., Rajaonatahina D., Migliani R., Ranjalahy J., Mauclere P. Emergence and rapid spread of tetracycline‐resistant Vibrio cholerae strains, Madagascar. Emerg Infect Dis. 2002;8:336–338.
    1. Frost M.C., Reynolds M.M., Meyerhoff M.E. Polymers incorporating nitric oxide releasing/generating substances for improved biocompatibility of blood‐contacting medical devices. Biomaterials. 2005;26:1685–1693.
    1. Givskov M., Olsen L., Molin S. Cloning and expression in Escherichia coli of the gene for extracellular phospholipase A1 from Serratia liquefaciens. J Bacteriol. 1988;170:5855–5862.
    1. Gusarov I., Starodubtseva M., Wang Z.Q., McQuade L., Lippard S.J., Stuehr D.J., Nudler E. Bacterial nitric‐oxide synthases operate without a dedicated redox partner. J Biol Chem. 2008;283:13140–13147.
    1. Hall‐Stoodley L., Costerton J.W., Stoodley P. Bacterial biofilms: from the natural environment to infectious diseases. Nat Rev Microbiol. 2004;2:95–108.
    1. Hentzer M., Riedel K., Rasmussen T.B., Heydorn A., Andersen J.B., Parsek M.R. Inhibition of quorum sensing in Pseudomonas aeruginosa biofilm bacteria by a halogenated furanone compound. Microbiology. 2002;148:87–102. et al.
    1. Hetrick E.M., Shin J.H., Stasko N.A., Johnson C.B., Wespe D.A., Holmuhamedov E., Schoenfisch M.H. Bactericidal efficacy of nitric oxide‐releasing silica nanoparticles. ACS Nano. 2008;2:235–246.
    1. Ignarro L.J., Fukuto J.M., Griscavage J.M., Rogers N.E., Byrns R.E. Oxidation of nitric oxide in aqueous solution to nitrite but not nitrate: comparison with enzymatically formed nitric oxide from L‐arginine. Proc Natl Acad Sci USA. 1993;90:8103–8107.
    1. Keefer L.K. Progress toward clinical application of the nitric oxide‐releasing diazeniumdiolates. Annu Rev Pharmacol Toxicol. 2003;43:585–607.
    1. Khardori N., Yassien M. Biofilms in device‐related infections. J Ind Microbiol. 1995;15:141–147.
    1. Metcalf W.W., Jiang W., Daniels L.L., Kim S.K., Haldimann A., Wanner B.L. Conditionally replicative and conjugative plasmids carrying lacZ alpha for cloning, mutagenesis, and allele replacement in bacteria. Plasmid. 1996;35:1–13.
    1. Ninnemann H., Maier J. Indications for the occurrence of nitric oxide synthases in fungi and plants and the involvement in photoconidiation of Neurospora crassa. Photochem Photobiol. 1996;64:393–398.
    1. Paludan‐Muller C., Weichart D., McDougald D., Kjelleberg S. Analysis of starvation conditions that allow for prolonged culturability of Vibrio vulnificus at low temperature. Microbiology. 1996;142:1675–1684.
    1. Pang C.M., Hong P., Guo H., Liu W.T. Biofilm formation characteristics of bacterial isolates retrieved from a reverse osmosis membrane. Environ Sci Technol. 2005;39:7541–7550.
    1. Que L.G., Liu L., Yan Y., Whitehead G.S., Gavett S.H., Schwartz D.A., Stamler J.S. Protection from experimental asthma by an endogenous bronchodilator. Science. 2005;308:1618–1621.
    1. Reynolds M.M., Frost M.C., Meyerhoff M.E. Nitric oxide‐releasing hydrophobic polymers: preparation, characterization, and potential biomedical applications. Free Radic Biol Med. 2004;37:926–936.
    1. Rodionov D.A., Dubchak I.L., Arkin A.P., Alm E.J., Gelfand M.S. Dissimilatory metabolism of nitrogen oxides in bacteria: comparative reconstruction of transcriptional networks. PLoS Comput Biol. 2005;1:415–431.
    1. Ryan R.P., Fouhy Y., Lucey J.F., Dow J.M. Cyclic di‐GMP signaling in bacteria: recent advances and new puzzles. J Bacteriol. 2006;188:8327–8334.
    1. Römling U., Gomelsky M., Galperin M.Y. C‐di‐GMP: the dawning of a novel bacterial signalling system. Mol Microbiol. 2005;57:629–639.
    1. Schachter B. Slimy business – the biotechnology of biofilms. Nat Biotechnol. 2003;21:361–365.
    1. Schlag S., Nerz C., Birkenstock T.A., Altenberend F., Gotz F. Inhibition of staphylococcal biofilm formation by nitrite. J Bacteriol. 2007;189:7911–7919.
    1. Snyder A.H., McPherson M.E., Hunt J.F., Johnson M., Stamler J.S., Gaston B. Acute effects of aerosolized S‐nitrosoglutathione in cystic fibrosis. Am J Respir Crit Care Med. 2002;165:922–926.
    1. Tao Y.P., Misko T.P., Howlett A.C., Klein C. Nitric oxide, an endogenous regulator of Dictyostelium discoideum differentiation. Development. 1997;124:3587–3595.
    1. Valle J., Da Re S., Henry N., Fontaine T., Balestrino D., Latour‐Lambert P., Ghigo J.M. Broad‐spectrum biofilm inhibition by a secreted bacterial polysaccharide. Proc Natl Acad Sci USA. 2006;103:12558–12563.
    1. Van Alst N.E., Picardo K.F., Iglewski B.H., Haidaris C.G. Nitrate sensing and metabolism modulate motility, biofilm formation, and virulence in Pseudomonas aeruginosa. Infect Immun. 2007;75:3780–3790.
    1. Wang P.G., Xian M., Tang X., Wu X., Wen Z., Cai T., Janczuk A.J. Nitric oxide donors: chemical activities and biological applications. Chem Rev. 2002;102:1091–1134.
    1. Wilken M., Huchzermeyer B. Suppression of mycelia formation by NO produced endogenously in Candida tropicalis. Eur J Cell Biol. 1999;78:209–213.
    1. Yildiz F.H., Schoolnik G.K. Role of rpoS in stress survival and virulence of Vibrio cholerae. J Bacteriol. 1998;180:773–784.
    1. Zafiriou O.C., McFarland M., Bromund R.H. Nitric oxide in seawater. Science. 1980;207:637–639.
    1. Zumft W.G. The biological role of nitric oxide in bacteria. Arch Microbiol. 1993;160:253–264.

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