O’Toole G, Kaplan HB, Kolter R. Biofilm formation as microbial development. Annu Rev Microbiol 2000; 54: 49–79
PubMed
Article
Google Scholar
Tolker-Nielsen T, Molin S. Spatial organization of microbial biofilm communities. Microb Ecol 2000; 40(2): 75–84
PubMed
Google Scholar
Costerton JW, Cheng KJ, Geesey GG, et al. Bacterial biofilms in nature and disease. Annu Rev Microbiol 1987; 41: 435–464
PubMed
Article
CAS
Google Scholar
Costerton JW, Stewart PS, Greenberg EP. Bacterial biofilms: a common cause of persistent infections. Science 1999; 284(5418): 1318–22
PubMed
Article
CAS
Google Scholar
Xu KD, McFeters GA, Stewart PS. Biofilm resistance to antimicrobial agents. Microbiology 2000; 146 (Pt 3): 547–9
PubMed
CAS
Google Scholar
Lewis K. Riddle of biofilm resistance. Antimicrob Agents Chemother 2001; 45(4): 999–1007
PubMed
Article
CAS
Google Scholar
Stewart PS, Costerton JW. Antibiotic resistance of bacteria in biofilms. Lancet 2001 Jul 14; 358(9276): 135–8
PubMed
Article
CAS
Google Scholar
Govan JR, Deretic V. Microbial pathogenesis in cystic fibrosis: mucoid Pseudomonas aeruginosa and Burkholderia cepacia. Microbiol Rev 1996; 60(3): 539–74
PubMed
CAS
Google Scholar
Koch C, Hoiby N. Pathogenesis of cystic fibrosis. Lancet 1993; 341(8852): 1065–9
PubMed
Article
CAS
Google Scholar
Tummler B, Kiewitz C. Cystic fibrosis: an inherited susceptibility to bacterial respiratory infections. Mol Med Today 1999; 5(8): 351–8
PubMed
Article
CAS
Google Scholar
Lam J, Chan R, Lam K, et al. Production of mucoid microcolonies by Pseudomonas aeruginosa within infected lungs in cystic fibrosis. Infect Immun 1980; 28(2): 546–56
PubMed
CAS
Google Scholar
Worlitzsch D, Tarran R, Ulrich M, et al. Effects of reduced mucus oxygen concentration in airway Pseudomonas infections of cystic fibrosis patients. J Clin Invest 2002; 109(3): 317–25
PubMed
CAS
Google Scholar
Hassett DJ, Cuppoletti J, Trapnell B, et al. Anaerobic metabolism and quorum sensing by Pseudomonas aeruginosa biofilms in chronically infected cystic fibrosis airways: rethinking antibiotic treatment strategies and drug targets. Adv Drug Deliv Rev 2002; 54(11): 1425–43
PubMed
Article
CAS
Google Scholar
Singh PK, Schaefer AL, Parsek MR, et al. Quorum-sensing signals indicate that cystic fibrosis lungs are infected with bacterial biofilms. Nature 2000; 407(6805): 762–4
PubMed
Article
CAS
Google Scholar
Hentzer M, Wu H, Andersen JB, et al. Attenuation of Pseudomonas aeruginosa virulence by quorum-sensing inhibitors. EMBO J 2003; 22(15): 1–13
Article
Google Scholar
Schuster M, Lostroh CP, Ogi T, et al. Identification, timing, and signal specificity of Pseudomonas aeruginosa quorum-controlled genes: a transcriptome analysis. J Bacteriol 2003; 185(7): 2066–79
PubMed
Article
CAS
Google Scholar
Whiteley M, Lee KM, Greenberg EP. Identification of genes controlled by quorum sensing in Pseudomonas aeruginosa. Proc Natl Acad Sci U S A 1999; 96(24): 13904–9
PubMed
Article
CAS
Google Scholar
Davies DG, Parsek MR, Pearson JP, et al. The involvement of cell-to-cell signals in the development of a bacterial biofilm. Science 1998; 280(5361): 295–8
PubMed
Article
CAS
Google Scholar
Eberl L, Winson MK, Sternberg C, et al. Involvement of N-acyl-L-homoserine lactone autoinducers in controlling the multicellular behaviour of Serratia liquefaciens. Mol Microbiol 1996; 20(1): 127–36
PubMed
Article
CAS
Google Scholar
Huber B, Riedel K, Hentzer M, et al. The cep quorum-sensing system of Burkholderia cepacia H111 controls biofilm formation and swarming motility. Microbiology 2001; 147 (Pt 9): 2517–28
PubMed
CAS
Google Scholar
Lynch MJ, Swift S, Kirke DF, et al. The regulation of biofilm development by quorum sensing in Aeromonas hydrophila. Environ Microbiol 2002; 4: 18–28
PubMed
Article
CAS
Google Scholar
Hentzer M, Riedel K, Rasmussen TB, et al. Inhibition of quorum sensing in Pseudomonas aeruginosa biofilm bacteria by a halogenated furanone compound. Microbiology 2002; 148(1): 87–102
PubMed
CAS
Google Scholar
Eberl L. N-acyl homoserinelactone-mediated gene regulation in gram-negative bacteria. Syst Appl Microbiol 1999; 22(4): 493–506
PubMed
Article
CAS
Google Scholar
Riedel K, Hentzer M, Geisenberger O, et al. N-acylhomoserine-lactone-mediated communication between Pseudomonas aeruginosa and Burkholderia cepacia in mixed biofilms. Microbiology 2001; 147(12): 3249–62
PubMed
CAS
Google Scholar
Rasmussen TB, Manefield M, Andersen JB, et al. How Delisea pulchra furanones affect quorum sensing and swarming motility in Serratia liquefaciens MG1. Microbiology 2000; 146 (Pt 12): 3237–44
PubMed
CAS
Google Scholar
Hartman G, Wise R. Quorum sensing: potential means of treating gram-negative infections? Lancet 1998; 351(9106): 848–9
PubMed
Article
CAS
Google Scholar
Finch RG, Pritchard DI, Bycroft BW, et al. Quorum sensing: a novel target for anti-infective therapy. J Antimicrob Chemother 1998; 42(5): 569–71
PubMed
Article
CAS
Google Scholar
Dong YH, Wang LH, Xu JL, et al. Quenching quorum-sensing-dependent bacterial infection by an N-acyl homoserine lactonase. Nature 2001 Jun 14; 411(6839): 813–7
PubMed
Article
CAS
Google Scholar
Schaefer AL, Hanzelka BL, Eberhard A, et al. Quorum sensing in Vibrio fischeri: probing autoinducer-LuxR interactions with autoinducer analogs. J Bacteriol 1996; 178(10): 2897–901
PubMed
CAS
Google Scholar
Chhabra SR, Stead P, Bainton NJ, et al. Autoregulation of carbapenem biosynthesis in Erwinia carotovora by analogues of N-(3-oxohexanoyl)-L-homoserine lactone. J Antibiot (Tokyo) 1993; 46(3): 441–54
Article
CAS
Google Scholar
Passador L, Tucker KD, Guertin KR, et al. Functional analysis of the Pseudomonas aeruginosa autoinducer PAI. J Bacteriol 1996; 178(20): 5995–6000
PubMed
CAS
Google Scholar
Zhu J, Beaber JW, More MI, et al. Analogs of the autoinducer 3-oxooctanoyl-homoserine lactone strongly inhibit activity of the TraR protein of Agrobacterium tumefaciens. J Bacteriol 1998; 180(20): 5398–405
PubMed
CAS
Google Scholar
Kline T, Bowman J, Iglewski BH, et al. Novel synthetic analogs of the Pseudomonas autoinducer. Bioorg Med Chem Lett 1999; 9(24): 3447–52
PubMed
Article
CAS
Google Scholar
Ikeda T, Kajiyama K, Kita T, et al. The synthesis of optically pure enantiomers of N-acyl-homoserine lactone autoinducers and their analogues. Chem Lett (Jpn) 2001; 314–315
McClean KH, Winson MK, Fish L, et al. Quorum sensing and Chromobacterium violaceum: exploitation of violacein production and inhibition for the detection of N-acylhomoserine lactones. Microbiology 1997; 143(12): 3703–11
PubMed
Article
CAS
Google Scholar
Olsen JA, Severinsen R, Rasmussen TB, et al. Synthesis of new 3- and 4-substituted analogues of acyl homoserine lactone quorum-sensing autoinducers. Bioorg Med Chem Lett 2002 Feb 11; 12(3): 325–8
PubMed
Article
CAS
Google Scholar
Joint I, Tait K, Callow ME, et al. Cell-to-cell communication across the prokaryote-eukaryote boundary. Science 2002; 298(5596): 1207
PubMed
Article
Google Scholar
Teplitski M, Robinson JB, Bauer WD. Plants secrete substances that mimic bacterial N-acyl homoserine lactone signal activities and affect population density-dependent behaviors in associated bacteria. Mol Plant Microbe Interact 2000; 13(6): 637–48
PubMed
Article
CAS
Google Scholar
Cha C, Gao P, Chen YC, et al. Production of acyl-homoserine lactone quorum-sensing signals by Gram-negative plant-associated bacteria. Mol Plant Microbe Interact 1998; 11(11): 1119–29
PubMed
Article
CAS
Google Scholar
Parsek MR, Greenberg EP. Acyl-homoserine lactone quorum sensing in Gram-negative bacteria: a signaling mechanism involved in associations with higher organisms. Proc Natl Acad Sci U S A 2000; 97(16): 8789–93
PubMed
Article
CAS
Google Scholar
Pierson EA, Wood DW, Cannon JA, et al. Interpopulation signaling via N-acylhomoserine lactones among bacteria in the wheat rhizosphere. Mol Plant Microbe Interact 1998; 11: 1078–84
Article
CAS
Google Scholar
Steidle A, Sigl K, Schuhegger R, et al. Visualization of N-acylhomoserine lactonemediated cell-cell communication between bacteria colonizing the tomato rhizosphere. Appl Environ Microbiol 2001; 67(12): 5761–70
PubMed
Article
CAS
Google Scholar
Mathesius U, Mulders S, Gao M, et al. Extensive and specific responses of a eukaryote to bacterial quorum-sensing signals. Proc Natl Acad Sci U S A 2003; 100(3): 1444–9
PubMed
Article
CAS
Google Scholar
de Nys R, Wright AD, König GM, et al. New halogenated furanones from the marine alga Delisea pulchra. Tetrahedron 1993; 49(48): 11213–20
Article
Google Scholar
de Nys R, Steinberg P, Rogers CN, et al. Quantitative variation of secondary metabolites in the sea hare Apylsia parvula and its host plant, Delisea pulchra. Mar Ecol Prog Ser 1996; 130: 135–46
Article
CAS
Google Scholar
de Nys R, Steinberg PD, Willemsen P, et al. Broad spectrum effects of secondary metabolites from the red alga Delisea pulchra in antifouling assays. Biofouling 1995; 8: 259–71
Article
Google Scholar
Reichelt JL, Borowitzka MA. Antimicrobial activity from marine algae: results of a large-scale screening programme. Hydrobiology 1984; 116/117: 158–68
Article
Google Scholar
Rice SA, Givskov M, Steinberg P, et al. Bacterial signals and antagonists: the interaction between bacteria and higher organisms. J Mol Microbiol Biotechnol 1999; 1(1): 23–31
PubMed
CAS
Google Scholar
Kjelleberg S, Steinberg PD, Givskov M, et al. Do marine natural products interfere with prokaryotic AHL regulatory systems? Aquat Microb Ecol 1997; 13(1): 85–93
Article
Google Scholar
Givskov M, de Nys R, Manefield M, et al. Eukaryotic interference with homoserine lactone-mediated prokaryotic signalling. J Bacteriol 1996; 178(22): 6618–22
PubMed
CAS
Google Scholar
Manefield M, de Nys R, Kumar N, et al. Evidence that halogenated furanones from Delisea pulchra inhibit acylated homoserine lactone (AHL)-mediated gene expression by displacing the AHL signal from its receptor protein. Microbiology 1999; 145: 283–91
PubMed
Article
CAS
Google Scholar
Manefield M, Rasmussen TB, Henzter M, et al. Halogenated furanones inhibit quorum sensing through accelerated LuxR turnover. Microbiology 2002; 148 (Pt 4): 1119–27
PubMed
CAS
Google Scholar
Manefield M, Harris L, Rice SA, et al. Inhibition of luminescence and virulence in the black tiger prawn (Penaeus monodon) pathogen Vibrio harveyi by intercellular signal antagonists. Appl Environ Microbiol 2000; 66(5): 2079–84
PubMed
Article
CAS
Google Scholar
Manefield M, Welch M, Givskov M, et al. Halogenated furanones from the red alga, Delisea pulchra, inhibit carbapenem antibiotic synthesis and exoenzyme virulence factor production in the phytopathogen Erwinia carotovora. FEMS Microbiol Lett 2001; 205(1): 131–8
PubMed
Article
CAS
Google Scholar
Gram L, Ravn L, Rasch M, et al. Food spoilage: interactions between food spoilage bacteria. Int J Food Microbiol 2002; 78(1-2): 79–97
PubMed
Article
Google Scholar
Hjelmgaard T, Persson T, Rasmussen TB, et al. Synthesis of furanone-based natural product analogues with quorum sensing antagonist activity. Bioorg Med Chem 2003; 11(15): 3261–3271
PubMed
Article
CAS
Google Scholar
Spoering AL, Lewis K. Biofilms and planktonic cells of Pseudomonas aeruginosa have similar resistance to killing by antimicrobials. J Bacteriol 2001; 183(23): 6746–51
PubMed
Article
CAS
Google Scholar
Wu H, Song Z, Hentzer M, et al. Detection of N-acylhomoserine lactones in lung tissues of mice infected with Pseudomonas aeruginosa. Microbiology 2000; 146(10): 2481–93
PubMed
CAS
Google Scholar
Chhabra SR, Harty C, Hooi DS, et al. Synthetic analogues of the bacterial signal (quorum sensing) molecule N-(3-oxododecanoyl)-L-homoserine lactone as immune modulators. J Med Chem 2003; 46(1): 97–104
PubMed
Article
CAS
Google Scholar
Di Mango E, Zar HJ, Bryan R, et al. Diverse Pseudomonas aeruginosa gene products stimulate respiratory epithelial cells to produce interleukin-8. J Clin Invest 1995; 96(5): 2204–10
Article
Google Scholar
Telford G, Wheeler D, Williams P, et al. The Pseudomonas aeruginosa quorum-sensing signal molecule N-(3-oxododecanoyl)-L-homoserine lactone has immunomodulatory activity. Infect Immun 1998; 66(1): 36–42
PubMed
CAS
Google Scholar
Lawrence RN, Dunn WR, Bycroft B, et al. The Pseudomonas aeruginosa quorumsensing signal molecule, N-(3-oxododecanoyl)-L-homoserine lactone, inhibits porcine arterial smooth muscle contraction. Br J Pharmacol 1999; 128(4): 845–8
PubMed
Article
CAS
Google Scholar
Saleh A, Figarella C, Kammouni W, et al. Pseudomonas aeruginosa quorumsensing signal molecule N-(3-oxododecanoyl)-L-homoserine lactone inhibits expression of P2Y receptors in cystic fibrosis tracheal gland cells. Infect Immun 1999; 67(10): 5076–82
PubMed
CAS
Google Scholar