| Literature DB >> 29276509 |
Ivana Aleksic1, Milos Petkovic2, Milos Jovanovic2, Dusan Milivojevic1, Branka Vasiljevic1, Jasmina Nikodinovic-Runic1, Lidija Senerovic1.
Abstract
A new strain, namely Lysinibacillus sp. BV152.1 was isolated from the rhizosphere of ground ivy (Glechoma hederacea L.) producing metabolites with potent ability to inhibit biofilm formation of an important human pathogens Pseudomonas aeruginosa PAO1, Staphylococcus aureus, and Serratia marcescens. Structural characterization revealed di-rhamnolipids mixture containing rhamnose (Rha)-Rha-C10-C10, Rha-Rha-C8-C10, and Rha-Rha-C10-C12 in the ratio 7:2:1 as the active principle. Purified di-rhamnolipids, as well as commercially available di-rhamnolipids (Rha-Rha-C10-C10, 93%) were used as the substrate for the chemical derivatization for the first time, yielding three semi-synthetic amide derivatives, benzyl-, piperidine-, and morpholine. A comparative study of the anti-biofilm, antibacterial and cytotoxic properties revealed that di-Rha from Lysinibacillus sp. BV152.1 were more potent in biofilm inhibition, both cell adhesion and biofilm maturation, than commercial di-rhamnolipids inhibiting 50% of P. aeruginosa PAO1 biofilm formation at 50 μg mL-1 and 75 μg mL-1, respectively. None of the di-rhamnolipids exhibited antimicrobial properties at concentrations of up to 500 μg mL-1. Amide derivatization improved inhibition of biofilm formation and dispersion activities of di-rhamnolipids from both sources, with morpholine derivative being the most active causing more than 80% biofilm inhibition at concentrations 100 μg mL-1. Semi-synthetic amide derivatives showed increased antibacterial activity against S. aureus, and also showed higher cytotoxicity. Therefore, described di-rhamnolipids are potent anti-biofilm agents and the described approach can be seen as viable approach in reaching new rhamnolipid based derivatives with tailored biological properties.Entities:
Keywords: amide derivative; biofilms; cell adhesion; di-rhamnolipids; rhamnolipids
Year: 2017 PMID: 29276509 PMCID: PMC5727045 DOI: 10.3389/fmicb.2017.02454
Source DB: PubMed Journal: Front Microbiol ISSN: 1664-302X Impact factor: 5.640
Antibacterial activity of rhamnolipids mixture (R90), di-rhamnolipids and di-rhamnolipid derivatives from Lysinibacillus sp. BV152.1 and Pseudomonas aeruginosa determined after 24 h incubation.
| Rhamnolipids MICa (μg mL-1) | |||||
|---|---|---|---|---|---|
| di-Rha mixture (F3) | >500 | >500 | >500 | >500 | >500 |
| di-Rha-Bn | >500 | >500 | >500 | >500 | >500 |
| di-Rha-Pip | >500 | >500 | >500 | 250 | >500 |
| di-Rha-Mor | >500 | >500 | >500 | >500 | >500 |
| di-rha-TBDMS | >500 | >500 | >500 | >500 | >500 |
| R90 | >500 | >500 | 250 | 250 | >500 |
| di-Rha | >500 | >500 | >500 | >500 | >500 |
| di-Rha-Bn | >500 | >500 | 62.5 | 125 | >500 |
| di-Rha-Pip | >500 | >500 | 62.5 | 62.5 | >500 |
| di-Rha-Mor | >500 | >500 | 62.5 | 62.5 | >500 |
| di-Rha-TBDMS | >500 | >500 | >500 | >500 | >500 |
Biofilm formation (%) in the presence of rhamnolipids mixture (R90), di-rhamnolipids, and di-rhamnolipid derivatives from Lysinibacillus sp. BV152.1 and P. aeruginosa.
| Rhamnolipids 50 μg mL-1 | |||||
|---|---|---|---|---|---|
| di-Rha mixture (F3) | 50 ± 5 | 45 ± 3 | 78 ± 12 | 80 ± 3 | 38 ± 13 |
| Rha-Bn | 60 ± 2 | 42 ± 2 | 4 0.5 | 66 ± 7 | 20 ± 4 |
| Rha-Pip | 50 ± 2 | 48 ± 4 | 4 0.5 | 67 ± 5 | 20 ± 4 |
| Rha-Mor | 20 ± 3 | 35 ± 8 | 11 ± 2 | 28 ± 2 | 12 ± 1 |
| Rha-TBDMS | 115 ± 10 | 100 ± 8 | 88 ± 12 | 106 ± 4 | 85 ± 1 |
| R90 | 54 ± 5 | 76 ± 8 | 43 ± 6 | 42 ± 3 | 15 ± 2 |
| di-Rha | 50 ± 3 | 109 ± 10 | 37 ± 4 | 44 ± 11 | 20 ± 5 |
| di-Rha-Bn | 36 ± 3 | 168 ± 3 | 39 ± 2 | 48 ± 10 | 50 ± 7 |
| di-Rha-Pip | 39 ± 4 | 94 ± 13 | 31 ± 2 | 34 ± 3 | 20 ± 3 |
| di-Rha-Mor | 50 ± 4 | 76 ± 7 | 27 ± 2 | 30 ± 3 | 14 ± 1 |
| di-Rha-TBDMS | 95 ± 7 | 73 ± 6 | 88 ± 10 | 69 ± 11 | 117 ± 4 |
Biofilm biomass (%) remained after biofilm dispersion with di-rhamnolipids and di-rhamnolipid derivatives from Lysinibacillus sp. BV152.1 and P. aeruginosa.
| Rhamnolipids 50 μg mL-1 | |||||
|---|---|---|---|---|---|
| di-Rha mixture (F3) | 53 ± 5 | 108 ± 7 | 115 ± 13 | 88 ± 7 | 243 ± 3 |
| Rha-Bn | 46 ± 2 | 74 ± 4 | 64 ± 5 | 62 ± 11 | 37 ± 2 |
| Rha-Pip | 52 ± 5 | 67 ± 4 | 87 ± 5 | 86 ± 10 | 180 ± 7 |
| Rha-Mor | 32 ± 2 | 75 ± 8 | 68 ± 10 | 63 ± 12 | 42 ± 4 |
| Rha-TBDMS | 80 ± 6 | 65 ± 1 | 110 ± 22 | 101 ± 14 | 99 ± 8 |
| di-Rha | 77 ± 3 | 135 ± 10 | 80 ± 9 | 82 ± 7 | 193 ± 8 |
| di-Rha-Bn | 84 ± 8 | 70 ± 6 | 62 ± 5 | 55 ± 10 | 239 ± 15 |
| di-Rha-Pip | 63 ± 4 | 59 ± 5 | 80 ± 7 | 54 ± 2 | 175 ± 18 |
| di-Rha-Mor | 44 ± 6 | 67 ± 8 | 44 ± 4 | 70 ± 6 | 160 ± 8 |
| di-Rha-TBDMS | 76 ± 10 | 78 ± 10 | 82 ± 3 | 120 ± 10 | 155 ± 3 |