| Literature DB >> 29140285 |
Hao Thanh Nguyen1,2, Francisco M Goycoolea3,4.
Abstract
The widespread emergence of antibiotic-resistant bacteria has highlighted the urgent need of alternative therapeutic approaches for human and animal health. Targeting virulence factors that are controlled by bacterial quorum sensing (QS), seems a promising approach. The aims of this study were to geneEntities:
Keywords: Captisol®; E. coli Top 10; chitosan; cyclodextrin; nanoparticles; quercetin; quorum sensing inhibitors
Mesh:
Substances:
Year: 2017 PMID: 29140285 PMCID: PMC6150374 DOI: 10.3390/molecules22111975
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Physicochemical properties of unloaded CS70/5/SBEβCD/TPP nanoparticles (mean ± S.D., n = 3).
| Mass Ratio CS/CD/TPP ( | Charge Ratio (+/−) | Z-Average Size (d. nm) | PDI | ζ-Potential (mV) | Production Yield (%) |
|---|---|---|---|---|---|
| 4/0/0.75 | 2.50 | 413 ± 11 | 0.15–0.19 | +36.9 ± 0.6 | 69.0 ± 3.2 |
| 4/0/0.5 | 3.75 | 256 ± 05 | 0.04–0.10 | +36.8 ± 0.8 | 37.7 ± 1.5 |
| 4/1/0.5 | 2.18 | 323 ± 18 | 0.03–0.17 | +38.0 ± 0.2 | 48.3 ± 1.3 |
| 4/2/0.25 | 1.93 | 259 ± 09 | 0.04–0.13 | +36.3 ± 0.5 | 45.4 ± 2.0 |
Physicochemical properties of unloaded CS70/20/SBEβCD/TPP nanoparticles (mean ± S.D., n = 3).
| Mass Ratio CS/CD/TPP ( | Charge Ratio (+/−) | Z-Average Size (d. nm) | PDI | ζ-Potential (mV) | Production Yield (%) |
|---|---|---|---|---|---|
| 4/3/0 | 2.08 | 378 ± 14 | 0.16–0.22 | +31.0 ± 0.9 | 40.5 ± 5.7 |
| 4/4/0 | 1.56 | 602 ± 23 | 0.23–0.25 | +31.5 ± 0.7 | 62.9 ± 2.1 |
| 4/0/1 | 2.25 | 335 ± 14 | 0.19–0.21 | +33.9 ± 1.2 | 55.3 ± 1.9 |
| 4/1/0.75 | 2.03 | 446 ± 12 | 0.13–0.25 | +40.0 ± 1.1 | 63.5 ± 2.8 |
| 4/2/0.5 | 1.85 | 413 ± 31 | 0.21–0.25 | +39.5 ± 1.4 | 60.1 ± 3.2 |
Figure 1Appearance of CS70/5/SBEβCD nanoparticles showing a gel phase at the bottom of the vials that holds the magnetic stirrers.
Figure 2Appearance of various formulations of CS70/20/SBEβCD/TPP nanoparticles immediately after being prepared, showing the aggregation phenomenon.
Figure 3Phase solubility of quercetin in the presence of increasing concentration of SBEβCD.
Physicochemical properties of CS70/5/SBEβCD/TPP quercetin-loaded nanoparticles (mean ± S.D., n = 3).
| Mass Ratio CS/CD/TPP ( | Charge Ratio (+/−) | Z-Average Size (d. nm) | PDI | ζ-Potential (mV) | Production Yield (%) |
|---|---|---|---|---|---|
| 4/0/0.75 | 2.50 | 444 ± 08 | 0.200–0.220 | +35.4 ± 1.67 | 68.77 ± 3.18 |
| 4/0/0.5 | 3.75 | 316 ± 08 | 0.062–0.118 | +35.5 ± 0.42 | 49.85 ± 4.92 |
| 4/1/0.5 | 2.18 | 319 ± 14 | 0.037–0.131 | +37.2 ± 0.45 | 61.63 ± 5.11 |
| 4/2/0.25 | 1.93 | 270 ± 05 | 0.042–0.114 | +35.5 ± 0.32 | 52.86 ± 2.19 |
Physicochemical properties of CS70/20/SBEβCD/TPP quercetin-loaded nanoparticles (mean ± S.D., n = 3).
| Mass Ratio CS/CD/TPP ( | Charge Ratio (+/−) | Z-Average Size (d. nm) | PDI | ζ Potential (mV) | Production Yield (%) |
|---|---|---|---|---|---|
| 4/0/1 | 2.25 | 390 ± 24 | 0.21–0.28 | +32.4 ± 1.91 | 64.24 ± 3.60 |
| 4/0/0.75 | 3.00 | 485 ± 31 | 0.30–0.38 | +29.3 ± 2.01 | 54.49 ± 7.88 |
| 4/3/0 | 2.08 | 332 ± 07 | 0.17–0.26 | +31.5 ± 1.29 | 45.98 ± 3.48 |
| 4/4/0 | 1.56 | 572 ± 27 | 0.22–0.27 | +32.8 ± 0.25 | 68.48 ± 5.21 |
| 4/1/0.75 | 2.03 | 401 ± 13 | 0.21–0.24 | +35.3 ± 0.92 | 74.48 ± 6.09 |
| 4/2/0.5 | 1.85 | 397 ± 21 | 0.16–0.26 | +39.0 ± 0.75 | 72.69 ± 3.75 |
Figure 4Encapsulation efficiency (grey column) and loading efficiency (black circle) of quercetin in selected loaded nanoparticle formulations of CS70/5 (a); and CS70/20 (b).
Figure 5Composition of selected formulations of nanoparticles, as determined by elemental analysis (mean ± S.D., n = 3).
Figure 6Stability of selected unloaded and quercetin-loaded nanoparticles of CS70/5 (a,b), and CS70/20 (c,d) in M9 medium at 37 °C (mean ± S.D., n = 3) at varying mass ratios of CS/SBEβCD/TPP shown in labels (L: loaded NPs; U: unloaded nanoparticles).
Figure 7Quercetin in vitro release profile of selected loaded nanoparticles of CS70/5 (a) and CS70/20 (b) in M9 medium at 37 °C (mean ± S.D., n = 3) at varying mass ratios of CS/SBEβCD/TPP shown in labels.
Figure 8FTIR transmission spectra of free chitosan, Captisol®, quercetin, unloaded and quercetin-loaded CS/SBEβCD/TPP 4/2/0.5 nanoparticles.
Figure 9Influence of different treatments on the evolution of bacterial growth (OD600), florescence intensity and relative light unit (FL/OD) of CS70/5 NPs (a–c); of CS70/20 NPs (d–f), respectively. Effect of different formulations on relative bacterial growth (OD600) and relative QS activity of CS70/5 NPs (g,h); of CS70/20 NPs (i,j), respectively. (L: loaded NPs, U: unloaded NPs, QUE: quercetin; values represent mean ± SD, n = 3 with eight technical replicates, statistical significance after ANOVA multiple comparison analysis with respect to the positive control: * p < 0.05, ** p < 0.01, *** p < 0.001 and **** p < 0.0001).