| Literature DB >> 15233843 |
Daniel Martinelli1, Gilles Grossmann, Urs Séquin, Helmut Brandl, Reinhard Bachofen.
Abstract
BACKGROUND: Cell to cell signaling systems in Gram-negative bacteria rely on small diffusible molecules such as the N-acylhomoserine lactones (AHL). These compounds are involved in the production of antibiotics, exoenzymes, virulence factors and biofilm formation. They belong to the class of furanone derivatives which are frequently found in nature as pheromones, flavor compounds or secondary metabolites. To obtain more information on the relation between molecular structure and quorum sensing, we tested a variety of natural and chemically synthesized furanones for their ability to interfere with the quorum sensing mechanism using a quantitative bioassay with Chromobacterium violaceum CV026 for antagonistic and agonistic action. We were looking at the following questions: 1) Do these compounds affect growth? 2) Do these compounds activate the quorum sensing system of C. violaceum CV026? 3) Do these compounds inhibit violacein formation induced by the addition of the natural inducer N-hexanoylhomoserine lactone (HHL)? 4) Do these compounds enhance violacein formation in presence of HHL?Entities:
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Year: 2004 PMID: 15233843 PMCID: PMC509243 DOI: 10.1186/1471-2180-4-25
Source DB: PubMed Journal: BMC Microbiol ISSN: 1471-2180 Impact factor: 3.605
Figure 1Structures of the tested furanones. Synthesis of furanones related to Streptomyces antibioticus metabolites and chemical structure of the compounds tested. A) general scheme for the synthesis of furanones related to Streptomyces antibioticus metabolites; reagents: a: Lithium diisopropylamide, b: BBr3, c: NaBH4 B) synthesized compounds (for details [29]).1.01: 5-hydroxy-4-methylfuran-2(5H)-one a), 3.01: 5-hydroxy-3-[(1R)-1-hydroxyethyl]-4-methylfuran-2(5H)-one b), 3.02: 5-hydroxy-3-[(1S)-1-hydroxyethyl]-4-methylfuran-2(5H)-one b), 3.11: 5-hydroxy-3-[(1R)-1-hydroxypropyl]-4-methylfuran-2(5H)-one b), 3.12: 5-hydroxy-3-[(1S)-1-hydroxypropyl]-4-methylfuran-2(5H)-one b), 3.21: 5-hydroxy-3-[(1R,2S)-1-hydroxy-2-methylbutyl]-4-methylfuran-2(5H)-one b), 3.22: 5-hydroxy-3-[(1S,2S)-1-hydroxy-2-methylbutyl]-4-methylfuran-2(5H)-one b), 3.31: 5-hydroxy-3-[(1R)-1-hydroxy-2,2-dimethylpropyl]-4-methylfuran-2(5H)-one b), 3.32: 5-hydroxy-3-[(1S)-1-hydroxy-2,2-dimethylpropyl]-4-methylfuran-2(5H)-one b), 3.41: 5-benzyloxy-3-bromo-4-methylfuran-2(5H)-one b), [63] 3.51: 5-hydroxy-3-(1-hydroxydecyl)-4-methylfuran-2(5H)-oned), 4.01: 3-[(1R)-1-hydroxyethyl]-4-methylfuran-2(5H)-one, 4.02: 3-[(1S)-1-hydroxyethyl]-4-methylfuran-2(5H)-one, 4.11: 3-[(1R)-1-hydroxypropyl]-4-methylfuran-2(5H)-one, 4.12: 3-[(1S)-1-hydroxypropyl]-4-methylfuran-2(5H)-one, 4.21: 5-hydroxy-3-[(1R,2S)-1-hydroxy-2-methylbutyl]-4-methylfuran-2(5H)-one, 4.22: 5-hydroxy-3-[(1S,2S)-1-hydroxy-2-methylbutyl]-4-methylfuran-2(5H)-one, 4.31: 3-[(1R)-1-hydroxy-2,2-dimethylpropyl]-4-methylfuran-2(5H)-one, 4.32: 3-[(1S)-1-hydroxy-2,2-dimethylpropyl]-4-methylfuran-2(5H)-one, 4.51: 3-(1-hydroxydecyl)-4-methylfuran-2(5H)-one a). a) Racemate b) Mixture of the two C(5)-epimers c) Mixture of the two C(1')-epimers d) Mixture of all four diastereoisomersC) commercially available flavoring compounds. 11: sotolone, 3-hydroxy-4,5-dimethylfuran-2(5H)-one; 12: emoxyfurane or EMF, 5-ethyl-3-hydroxy-4-methylfuran-2(5H)-one; 13: dihydroactinolide, 5,6,7,7a-4,4,7a-trimethyltetrahydrobenzofuran-2(4H)-one; 14: methyltetrahydrofuranone, 2-methyldihydrofuran-3(2H)-one;, 15: norfuraneol, 4-hydroxy-5-methylfuran-3(2H)-one; 16: DMHF or furaneol, 4-hydroxy-2,5-dimethylfuran-3(2H)-one; 17: pineapple ketone acteate, 2,5-dimethyl-4-oxo-4,5-dihydrofuran-3-yl acetate; 18: HF or homofuraneol; 5-ethyl-4-hydroxy-2-methylfuran-3(2H)-one; 19: methyl furyl butanal, 3-(5-methyl-2-furyl)butanal; 20: L-ascorbic acid, (5R)-3,4-dihydroxy-5-[(1S)-1,2-dihydroxyethyl]furan-2(5H)-one; 21: (5Z)-4-bromo-5-(bromomethylene)-3-butylfuran-2(5H)-one; 22: (5Z)-4-bromo-5-(bromomethylene)-3 [(1R)-1-hydroxybutyl]furan-2(5H)-one; 23: AHL, principal structure of N-acyl-L-homoserine lactones with N-decanoyl-L-homoserine lactone as example.
Figure 2Bioassay for quorum sensing using Concentrations of compound 3.31 in rows A to F: Columns 1 to 3 = 10-2 M, columns 4 to 6 = 10-3 M, columns 7 to 9 = 10-4 M, columns 10 to 12 = 10-5 M. HHL concentrations: row A 10-6 M, row B 3.3*10-7 M, row C 1.1*10-7 M, row D 3.7*10-8 M, row E 1.2*10-8 M, row F 4.1*10-9 M. Rows G and H: calibration for HHL, G1-G3 10-6 M, G4-G6 10-7 M, G7-G9 10-8 M, G10-G12 10-9 M, H1-H3 10-10 M, H4-H6 10-11 M. H7-H9 is a growth control of the mutant CV026 lacking HHL, wells H10-H12 contain compound 3.31 at 10-2 M to observe growth inhibition.
Figure 3Quantitative presentation of the bioassay showing effects of compound 3.31 on violacein production in C. violaceum CVO 26 at various HHL concentrations. Quantitative presentation of data from Figure 2 showing effects of compound 3.31 on violacein production in C. violaceum CVO 26 at various HHL concentrations. A value of 1 is equal to the violacein production induced by 3.7*10-8 M HHL. Values are the mean of 3 determinations, the standard deviation was between 0.01 and 0.09 (error bars indicated). Note that the x-axis is logarithmic.
Figure 4Induction of violacein production in Induction of violacein production was observed by adding different N-acylhomoserine lactones to cultures of C. violaceum CV026. The experiments where conducted according to the well assay described in the methods section. A value of 1 is equal to the violacein production induced by 3.7*10-8 M HHL, 0 = no violacein formed. Values are the mean of 3 determinations, the standard deviation was between 0.01 and 0.09 (error bars indicated).
Figure 5Inhibition of violacein production by Inhibition of violacein production was observed by adding different N-acylhomoserine lactones and HHL at 3.7*10-8 M HHL to cultures of C. violaceum CV026. The experiments where conducted according to the well assay described in the methods section. A value of 1 is equal to the violacein production induced by 3.7*10-8 M HHL alone (no inhibition), 0 = no violacein formed (complete inhibition). Values are the mean of 3 determinations, the standard deviation was between 0.01 and 0.09 (error bars indicated).
Effects of the compounds listed in Figure 1 on quorum sensing and growth.
| Compound | Activation no HHL Comp. 10-4 M | Toxic no HHL Comp. 10-2 M | Inhibition 1 HHL 3.7*10-8 M Comp. 10-4 M | Inhibition 2 HHL 10-6 M Comp. 10-4 M | Enhanced Expression HHL 4.6*10-9 Comp. 10-5 M |
| 1.01 | -0.04 | 0.65 | 0.78 | 0.77 | |
| 3.01 | 0.02 | 0.74 | |||
| 3.02 | 0.03 | 0.65 | |||
| 3.11 | 0.00 | 0.97 | 0.18 | 0.18 | |
| 3.12 | -0.01 | 0.96 | 0.69 | ||
| 3.21 | -0.02 | 0.83 | 0.83 | 0.95 | |
| 3.22 | -0.02 | 0.75 | 0.73 | ||
| 3.31 | -0.05 | 0.36 | 0.82 | ||
| 3.32 | -0.08 | 1.05 | |||
| 3.41 | -0.02 | 0.80 | 1.07 | ||
| 3.51 | -0.06 | 0.87 | 0.94 | 1.15 | |
| 4.01 | 0.00 | 1.03 | |||
| 4.02 | 0.00 | 0.97 | 0.23 | ||
| 4.11 | -0.01 | 0.86 | 0.67 | 0.94 | |
| 4.12 | -0.05 | 0.65 | 0.36 | 0.52 | |
| 4.21 | -0.03 | 0.76 | 0.66 | ||
| 4.22 | -0.03 | 0.72 | 0.74 | ||
| 4.31 | -0.06 | 0.32 | 0.86 | ||
| 4.32 | -0.04 | 0.51 | 0.90 | ||
| 4.51 | 0.03 | 1.17 | 0.70 | 0.97 | |
| 11 | 0.02 | 1.19 | 0.96 | 0.97 | |
| 12 | |||||
| 13 | -0.04 | 0.84 | 0.62 | ||
| 14 | 0.00 | 1.03 | 0.92 | 0.91 | |
| 15 | -0.03 | 0.68 | 0.96 | ||
| 16 | 0.01 | 1.10 | 0.84 | 0.84 | |
| 17 | 0.00 | 1.04 | 0.95 | 0.97 | 0.81 |
| 18 | -0.09 | 0.60 | 0.93 | 0.91 | |
| 19 | -0.06 | 0.74 | 0.78 | 1.02 | |
| 20 | 0.01 | 1.12 | 0.92 | 0.84 | |
| 21 | -0.02 | 0.83 | 1.31 | ||
| 22 | -0.04 | 0.39 | 0.96 | ||
| DHL | 0.78 | 0.78 | |||
Column 1: activation of QS = bold. Growth control = 0, 3.7*10-8M HHL = 1. Column 2: growth stimulation (> 1.15) = bold, growth inhibition (< 0.6) = italics, growth control = 1. Column 3: inhibition of QS induced by 3.7*10-8M HHL (< 0.60) = italics, control = 1. Column 4: inhibition of QS induced by 10-6 M HHL, > 0.15 less inhibitory than column 3 = bold, > 0.15 more inhibitory than column 3 = italics, control = 1. Column 5: synergistic effect to HHL = bold, control = 1.