| Literature DB >> 34070620 |
Marta Dąbrowska1,2, Eliana B Souto2,3, Izabela Nowak1.
Abstract
Lipid nanoparticles based on multiple emulsion (W/O/W) systems are suitable for incorporating hydrophilic active substances, including iridoid glycosides. This study involved optimization of composition of lipid nanoparticles, incorporation of active compounds (aucubin and catalpol), evaluation of stability of the resulting nanocarriers, and characterization of their lipid matrix. Based on 32 factorial design, an optimized dispersion of lipid nanoparticles (solid lipid:surfactant-4.5:1.0 wt.%) was developed, predisposed for the incorporation of iridoid glycosides by emulsification-sonication method. The encapsulation efficiency of the active substances was determined at nearly 90% (aucubin) and 77% (catalpol). Regarding the stability study, room temperature was found to be the most suitable for maintaining the expected physicochemical parameter values (particle size < 100 nm; polydispersity index < 0.3; zeta potential > |± 30 mV|). Characterization of the lipid matrix confirmed the nanometer size range of the resulting carriers (below 100 nm), as well as the presence of the lipid in the stable β' form.Entities:
Keywords: aucubin; catalpol; factorial design; iridoid glycosides; lipid nanoparticles
Mesh:
Substances:
Year: 2021 PMID: 34070620 PMCID: PMC8198468 DOI: 10.3390/molecules26113161
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Structural formulas of aucubin (A) and catalpol (B).
Measured data obtained by conducting the 32 factorial design (data are expressed as mean ± SD 1).
| Sample | Mean Particle Size (nm, ±SD 1) | Polydispersity Index | Zeta Potential 2 |
|---|---|---|---|
| A | 99.46 ± 0.40 | 0.247 ± 0.013 | 9.09 ± 2.15 |
| B | 92.58 ± 0.81 | 0.276 ± 0.006 | 26.97 ± 6.06 |
| C | 91.39 ± 1.97 | 0.313 ± 0.027 | 16.00 ± 4.33 |
| D | 94.06 ± 0.61 | 0.214 ± 0.004 | 12.93 ± 1.87 |
| E | 93.32 ± 0.32 | 0.226 ± 0.004 | 39.30 ± 4.22 |
| F | 124.03 ± 2.32 | 0.370 ± 0.011 | 29.73 ± 2.61 |
| G | 116.63 ± 1.39 | 0.346 ± 0.008 | 17.57 ± 2.61 |
| H | 147.10 ± 2.44 | 0.402 ± 0.009 | 43.03 ± 2.06 |
| I | 112.07 ± 1.01 | 0.320 ± 0.007 | 39.23 ± 7.24 |
1 SD: standard deviation; 2 pH of solutions equal to approximately 6.2.
Figure 2Pareto chart showing the effect of the lipid (Softisan® 100) on mean particle size. The statistical analysis showed that average particle size of the prepared dispersions was dependent only on the percentage content of the solid lipid (p < 0.05). The impact of the amount of the surfactant (Tween® 80) has been determined to be statistically insignificant.
Figure 3Response surface plot for the effect of the lipid (Softisan®100) and surfactant (Tween® 80) content on polydispersity index. The determined level of polydispersity index was highly associated with the percentage content of Softisan® 100 and Tween® 80 (p < 0.05). Regarding the results, the optimum composition of the designed lipid nanoparticle dispersion was determined at the lipid to surfactant content ratio of 4.5:1.0 wt%.
Quantitative analysis of iridoid glycosides non-incorporated into the obtained lipid nanoparticles.
| Incorporated Active Substance | Concentration (μg/mL ± SD 1) | EE 2 (% ± SD 1) | LC2 (% ± SD 1) |
|---|---|---|---|
|
| 10.476 ± 0.235 | 89.52 ± 0.72 | 19.89 ± 0.23 |
|
| 20.683 ± 0.192 | 77.02 ± 0.93 | 15.41 + 0.46 |
1 SD: standard deviation; 2 calculated from the equations presented in subsection “Encapsulation efficiency and loading capacity”.
Changes in mean particle size, polydispersity index, and zeta potential of the studied dispersions of lipid nanoparticles stored in various temperature conditions (4, 25, and 40 °C) for 30 days.
| MEAN PARTICLE SIZE (nm, ±SD) | ||||
|---|---|---|---|---|
| Blank 1 | +aucubin | +catalpol | ||
|
|
| 100.97 ± 0.75 | 79.30 ± 1.73 | 82.55 ± 2.37 |
|
| 139.10 ± 9.66 | 92.20 ± 3.85 | 84.78 ± 4.20 | |
|
|
| 93.32 ± 0.32 | 84.35 ± 1.84 | 84.79 ± 1.32 |
|
| 103.93 ± 1.01 | 82.95 ± 2.65 | 85.86 ± 3.16 | |
|
|
| 139.57 ± 2.58 | 82.81 ± 1.56 | 81.84 ± 1.93 |
|
| 101.73 ± 2.25 | 81.27 ± 2.31 | 82.66 ± 1.85 | |
|
| ||||
| Blank 1 | +aucubin | +catalpol | ||
|
|
| 0.295 ± 0.021 | 0.236 ± 0.005 | 0.237 ± 0.003 |
|
| 0.476 ± 0.085 | 0.297 ± 0.034 | 0.235 ± 0.003 | |
|
|
| 0.226 ± 0.004 | 0.240 ± 0.007 | 0.240 ± 0.014 |
|
| 0.266 ± 0.018 | 0.232 ± 0.003 | 0.220 ± 0.009 | |
|
|
| 0.406 ± 0.010 | 0.237 ± 0.013 | 0.201 ± 0.013 |
|
| 0.463 ± 0.021 | 0.216 ± 0.008 | 0.212 ± 0.013 | |
|
| ||||
| Blank 1,2 | +aucubin 3 | +catalpol 3 | ||
|
|
| 9.37 ± 2.19 | 41.63 ± 6.44 | 50.77 ± 0.15 |
|
| 8.82 ± 2.74 | 35.45 ± 1.91 | 41.60 ± 2.25 | |
|
|
| 39.30 ± 4.22 | 47.30 ± 1.47 | 55.53 ± 1.55 |
|
| 15.50 ± 0.66 | 34.37 ± 2.31 | 37.07 ± 3.11 | |
|
|
| 15.30 ± 2.39 | 45.20 ± 0.95 | 53.43 ± 1.77 |
|
| 13.17 ± 0.71 | 45.47 ± 1.10 | 46.23 ± 2.10 | |
1 Blank: lipid nanoparticle before the incorporation of the active substance; 2 pH of solutions equal to approximately 6.2; 3 pH of solutions equal to approximately 6.0.
Figure 4TEM images of lipid nanoparticles incorporated with iridoid glycosides tested proved the spherical shape of the obtained lipid nanoparticles and their size in the range below 100 nm. (A) Aucubin-loaded lipid nanoparticles with some polydisperse particles of size, which was still within the expected value range; (B) Catalpol-loaded lipid nanoparticles where no agglomeration was observed.
Figure 5Comparison of DSC thermograms of the lipid and the studied lipid nanoparticle dispersions (the thermograms are shifted by a constant value of 20 mW in relation to the previous thermogram).
Figure 6Comparison of diffractograms of the lipid and the studied dispersions of lipid nanoparticles (the diffractograms are shifted by a constant value of 6000 arbitrary units in relation to the previous diffractogram).
Quantitative composition of samples of lipid nanoparticle dispersions prepared as part of the 32 factorial design.
| Sample | Softisan® 100 1 | Tween® 80 2 | Glycerol | CTAB 3 | Water |
|---|---|---|---|---|---|
| A | 4.00 | 0.50 | 37.50 | 0.50 | 56.00 |
| B | 4.00 | 1.00 | 37.50 | 0.50 | 55.50 |
| C | 4.00 | 1.50 | 37.50 | 0.50 | 55.00 |
| D | 4.50 | 0.50 | 37.50 | 0.50 | 55.50 |
| E | 4.50 | 1.00 | 37.50 | 0.50 | 55.00 |
| F | 4.50 | 1.50 | 37.50 | 0.50 | 54.50 |
| G | 5.00 | 0.50 | 37.50 | 0.50 | 55.00 |
| H | 5.00 | 1.00 | 37.50 | 0.50 | 54.50 |
| I | 5.00 | 1.50 | 37.50 | 0.50 | 54.00 |
1Softisan® 100 (solid lipid); 2 Tween® 80 (nonionic surfactant); 3 CTAB (cationic surfactant).