| Literature DB >> 23549269 |
Iolanda Francolini1, Vincenzo Taresco, Fernanda Crisante, Andrea Martinelli, Lucio D'Ilario, Antonella Piozzi.
Abstract
Usnic acid, a potent antimicrobial and anticancer agent, poorly soluble in water, was complexed to novel antimicrobial polyacrylamides by establishment of strong acidic-base interactions. Thermal and spectroscopic analysis evidenced a molecular dispersion of the drug in the polymers and a complete drug/polymer miscibility for all the tested compositions. The polymer/drug complexes promptly dissolved in water and possessed a greater antimicrobial activity against Staphylococcus epidermidis than both the free drug and the polymer alone. The best results were obtained with the complex based on the lowest molecular weight polymer and containing a low drug content. Such a complex showed a larger inhibition zone of bacterial growth and a lower minimum inhibitory concentration (MIC) with respect to usnic acid alone. This improved killing effect is presumably due to the reduced size of the complexes that allows an efficient cellular uptake of the antimicrobial complexes. The killing effect extent seems to be not significantly dependent on usnic acid content in the samples.Entities:
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Year: 2013 PMID: 23549269 PMCID: PMC3645690 DOI: 10.3390/ijms14047356
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Molecular weight, polydispersity index and dynamic light scattering (DLS) size of synthesized polymers.
| POLYMER | Size (nm) | ||
|---|---|---|---|
| pAcDEDT=0 | 120 | 1.35 | 920 ± 40 |
| pAcDEDT=0.05 | 100 | 1.30 | 880 ± 80 |
| pAcDEDT=0.1 | 94 | 1.32 | 780 ± 50 |
| pAcDEDT=0.3 | 78 | 1.29 | 680 ± 70 |
| pAcDEDT=0.5 | 69 | 1.31 | 500 ± 70 |
The data, representative of at least six measurements, are reported as the arithmetic mean ± standard deviation.
Figure 1Inhibition zones of bacterial growth of polymers synthesized with different amount of chain transfer agent (T).
Figure 2pAcDEDT=0 thermograms related to the first and second heating cycle (a); dependence of polymer glass transition temperature (Tg) on the chain transfer agent/[AcDED] ratio (b). The Tg values were determined by the first derivative of the curve obtained in the second heating cycle.
Figure 3Differential scanning calorimetry (DSC) curves of usnic acid and pAcDEDT=0/usnic acid (UA) complexes (a); dependence of polymer glass transition temperature on usnic acid content for pAcDEDT=0 and pAcDEDT=0.5 (b). The Tg values were determined by the first derivative of the curve obtained in the first heating cycle.
Figure 41H-NMR spectra of usnic acid (a), pAcDEDT=0/UA 70/30 complex (b) and pAcDEDT=0 (c).
DLS size of polymer/UA complexes.
| pAcDED/UA | Size (nm) | ||
|---|---|---|---|
|
| |||
| [T]/[AcDED] = 0 | [T]/[AcDED] = 0.1 | [T]/[AcDED] = 0.5 | |
| 100/0 | 920 ± 40 | 780 ± 50 | 500 ± 70 |
| 70/30 | 530 ± 40 | 70 ± 7 | 60 ± 10 |
| 60/40 | 600 ± 30 | 90 ± 8 | 80 ± 10 |
| 50/50 | 580 ± 50 | 95 ± 15 | 90 ± 9 |
| 30/70 | 610 ± 70 | 100 ± 15 | 100 ± 10 |
The data, representative of at least six measurements, are reported as the arithmetic mean ± standard deviation.
Inhibition zones of bacterial growth and minimum inhibitory concentrations (MICs) of usnic acid, pAcDEDT=0.5 and pAcDEDT=0.5/UA complexes.
| Sample | Inhibition Zone (mm) | MIC (μg/mL) |
|---|---|---|
| Usnic acid | 2 ± 0.5 | 16 ± 4 |
| pAcDEDT=0.5 | 4 ± 1 | 100 ± 3 |
| pAcDEDT=0.5/UA 70/30 | 15 ± 2 | 5 ± 1 |
| pAcDEDT=0.5/UA 60/40 | 9 ± 1 | 7 ± 1 |
| pAcDEDT=0.5/UA 50/50 | 9 ± 2 | 8 ± 1 |
| pAcDEDT=0.5/UA 30/70 | 9 ± 2 | 10 ± 2 |
Scheme 1Structure formula of pAcDED (a) and usnic acid (b).