| Literature DB >> 32660132 |
Małgorzata Stanisz1, Łukasz Klapiszewski1, Dariusz T Mlynarczyk2, Beata J Stanisz3, Teofil Jesionowski1.
Abstract
Biopolymer-based spherical particles exhibit unique properties including narrow sizes and many functional groups on their surfaces. Therefore, they show great potential for application in many scientific and industrial processes. The main aim of this study was to prepareEntities:
Keywords: biopolymers; cilazapril; drug stability; spherical particles; surfactants
Mesh:
Substances:
Year: 2020 PMID: 32660132 PMCID: PMC7397289 DOI: 10.3390/molecules25143150
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1SEM images of LC-2a (1:1 wt./wt.) (a), LC-2a (2:1 wt./wt.) (b), LC-2a (4:1 wt./wt.) (c), LC-2b (1:1 wt./wt.) (d), LC-2b (2:1 wt./wt.) (e), LC-2b (4:1 wt./wt.) (f), LC-4 (1:1 wt./wt.) (g), LC-4 (2:1 wt./wt.) (h) and LC-4 (4:1 wt./wt.) (i).
Particle size distribution and polydispersity index for all obtained products.
| Sample Name | Particle Size Distributions by Volume (nm) | Maximum Volume Contribution (%) | Polydispersity Index (PdI) |
|---|---|---|---|
| LC-2a (1:1 wt./wt.) | 295–825 | 531 nm–28.3 | 0.186 |
| LC-2a (2:1 wt./wt.) | 220–531 | 342 nm–27.1 | 0.219 |
| LC-2a (4:1 wt./wt.) | 255–615 | 396 nm–29.1 | 0.330 |
| LC-2b (1:1 wt./wt.) | 255–615 | 396 nm–27.3 | 0.315 |
| LC-2b (2:1 wt./wt.) | 255–615 | 459 nm–30.8 | 0.111 |
| LC-2b (4:1 wt./wt.) | 106–1106 | 295 nm–9.2; | 0.284 |
| LC-4 (1:1 wt./wt.) | 220–712 | 396 nm–27.8 | 0.238 |
| LC-4 (2:1 wt./wt.) | 255–825 | 396 nm–24.5 | 0.352 |
| LC-4 (4:1 wt./wt.) | 220–955 | 396 nm–20.8 | 0.218 |
A. fischeri metabolism inhibition by LC-2a (1:1 wt./wt.), LC-2b (2:1 wt./wt.), LC-4 (1:1 wt./wt.) and LC-4 (2:1 wt./wt.).
| Sample Name | ||
|---|---|---|
| Effect After 5 min (%) | Effect After 15 min (%) | |
| LC-2a (1:1 wt./wt.) | 14 | 18 |
| LC-2b (2:1 wt./wt.) | 33 | 37 |
| LC-4 (1:1 wt./wt.) | 18 | 22 |
| LC-4 (2:1 wt./wt.) | 22 | 24 |
Figure 2SEM images of LC-2a (1:1 wt./wt.) (a,b), CIL (c,d) and CIL@LC-2a (1:1 wt./wt.) (e,f); shown in two magnifications.
Particle size distribution and polydispersity index for cilazapril (CIL), lignin-based spheres and cilazapril-lignin-based blend (CIL@LC (1:1 wt./wt.).
| Sample Name | Particle Size Distributions by Volume (nm) | Maximum Volume Contribution (%) | Polydispersity Index |
|---|---|---|---|
| CIL | 38–68; 106–615 | 51 nm–12.1 | 0.821 |
| LC-2a (1:1 wt./wt.) | 295–825 | 531 nm–28.3 | 0.186 |
| CIL@LC-2a (1:1 wt./wt.) | 164–3091 | 1718 nm–12.2; 1990 nm–12.2 | 0.363 |
Figure 3Fourier transform infrared spectra of lignin and CTAB (a), cilazapril, LC-2a (1:1 wt./wt.) and CIL@LC-2a (1:1 wt./wt.) (b).
Figure 4Zeta potential vs. pH for LC-2a (1:1 wt./wt.), cilazapril and CIL@LC-2a (1:1 wt./wt.).
Figure 5TGA curves of LC-2a (1:1 wt./wt.), cilazapril and CIL@LC-2a (1:1 wt./wt.).
Figure 6RP-HPLC chromatograms for: cilazapril in pure (a), LC-2a (1:1 wt./wt.) (b), CIL@LC-2a (1:1 wt./wt.) before degradation (c) and CIL@LC-2a (1:1 wt./wt.) after degradation (d). Retention times: cilazapril (1): tR ~ 8 min; LC-2a (1:1 wt./wt.) (2): tR ~ 2–4 min and degradation product of cilazapril (3): tR ~6 min.
Figure 7Semilogarithmic plot of the degradation of CIL@LC-2a (1:1 wt./wt.) product at 90 °C and humidity 76.4%.
Figure 8Semilogarithmic linear dependence of the reaction rate constant and the inverse of temperature for stability evaluation of cilazapril in pure and CIL@LC-2a (1:1 wt./wt.).
The effect of humidity on the stability of cilazapril in pure and CIL@LC-2a (1:1 wt./wt.) at 90 °C.
| Cilazapril in Pure | CIL@LC-2a (1:1 wt./wt.) | |
|---|---|---|
| RH (%) | k ± Δk (1/s) | |
| 25.0 | (3.270 ± 0.241) 10−6 | (7.564 ± 0.574) 10−7 |
| 50.9 | (7.922 ± 0.964) 10−6 | (1.545 ± 0.705) 10−6 |
| 60.5 | (1.189 ± 0.068) 10−5 | (1.999 ± 0.421) 10−6 |
| 66.5 | (1.583 ± 0.143) 10−5 | (2.367 ± 0.248) 10−6 |
| 76.4 | (1.941 ± 0.106) 10−5 | (3.883 ± 0.634) 10−6 |
| linear relationship lnk = f(RH) | ||
| a | 0.0361 ± 0.0062 | 0.0304 ± 0.0068 |
| SDa | 0.0020 | 0.0024 |
| b | −13.526 ± 0.231 | −14.904 ± 0.462 |
| SDb | 0.102 | 0.143 |
| r | 0.997 | 0.990 |
Calculation of the parameters: a—slope, SDa—standard deviation of the slope, b—intercept, SDb—standard deviation of intercept, and k—correlation coefficient.
Figure 9Schematic diagram of preparation of lignin-based spherical particles.