| Literature DB >> 25347456 |
Jiraporn Leanpolchareanchai1, Karine Padois2, Françoise Falson3, Rapepol Bavovada4, Pimolpan Pithayanukul5.
Abstract
A microemulsion system containing Thai mango seed kernel extract (MSKE, cultivar "Fahlun") was developed and characterised for the purpose of topical skin delivery. The MSKE-loaded microemulsions were prepared by using the spontaneous emulsification method. Isopropyl myristate (IPM) was selected as the oil phase. A polyoxyethylene sorbitan monooleate and sorbitan monododecanoate (1:1, w/w) system was used as the surfactant phase; an aqueous mixture of different cosurfactants (absolute ethanol, 96.3% v/v ethanol, 1-propanol, 2-propanol or 1,2-propanediol) at a weight ratio of 1:1 was used as the aqueous phase. Among the cosurfactants studied, the 1-propanol aqueous mixture had the largest microemulsion region (48.93%) in the pseudo-ternary phase diagram. Microemulsions containing 1% MSKE demonstrated good physicochemical stability during a six-month study period at 25 ± 2 °C/60% ± 5% RH. The ex vivo skin permeation study demonstrated that the microemulsions exhibited a potent skin enhancement effect allowing MSKE to penetrate skin layers up to 60-fold higher compared with the control. Neither skin irritation nor skin corrosion was observed in ex vivo studies. The present study revealed that IPM-based microemulsion systems may be promising carriers to enhance skin penetration and delivering MSKE for topical treatment.Entities:
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Year: 2014 PMID: 25347456 PMCID: PMC6271960 DOI: 10.3390/molecules191117107
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
The equilibrium solubility of MSKE in the tested solvents at 25 ± 1 °C.
| No. | Solvents | Equilibrium Solubility a,b |
|---|---|---|
| 1. | IPM | 0.00 ± 0.00 |
| 2. | Water | 26.41 ± 1.60 |
| 3. | PSM | 5.27 ± 1.83 |
| 4. | SM | 0.02 ± 0.00 |
| 5. | Mixture of PSM and SM (1:1, by weight) | 1.44 ± 0.70 |
| 6. | Absolute EtOH | 1.81 ± 0.31 |
| 7. | 96.3% EtOH | 5.13 ± 0.98 |
| 8. | 1-PA | 0.69 ± 0.21 |
| 9. | 2-PA | 24.98 ± 1.50 |
| 10. | 1,2-PA | 13.22 ± 2.54 |
| 11. | Mixture of water and Absolute EtOH (1:1, by weight) | 26.87 ± 1.16 |
| 12. | Mixture of water and 96.3% EtOH (1:1, by weight) | 24.22 ± 2.79 |
| 13. | Mixture of water and 1-PA (1:1, by weight) | 26.39 ± 2.32 |
| 14. | Mixture of water and 2-PA (1:1, by weight) | 23.39 ± 1.19 |
| 15. | Mixture of water and 1,2-PA (1:1, by weight) | 21.58 ± 4.18 |
IPM = isopropyl myristate, PSM = polyoxyethylene sorbitan monooleate, SM = sorbitan monododecanoate, EtOH = ethanol, 1-PA = 1-propanol, 2-PA = 2-propanol, 1,2-PA = 1,2-propanediol; a The values are expressed as the mean ± SD (n = 3); b The equilibrium solubility of MSKE in the tested solvents was calculated from the content analysis of PGG in MSKE.
Figure 1Pseudo-ternary phase diagrams of microemulsions composed of IPM, the surfactant mixture (PSM:SM = 1:1, by weight) and aqueous phase. The aqueous mixture contained different cosurfactants i.e., short-chain alcohols: (a) absolute EtOH; (b) 96.3% EtOH; (c) 1-PA; (d) 2-PA; (e) 1,2-PA. The numbers shown in the areas represent the total area percentage of the microemulsion (ME) regions in the phase diagram.
Physical characterisations of all unloaded microemulsion formulations.
| Formulations | σ a,b | pH a,b | RI a,b | η at 1000 s−1 a,b | z-ave a,b | PDI a,b |
|---|---|---|---|---|---|---|
| 1. Absolute EtOH | 0(0) | 7.31(0.00) | 1.4364(0.0000) | 38.51(0.13) | 17(1) | 0.46(0.08) |
| 2. 96.3% EtOH | 0(0) | 7.28(0.00) | 1.4353(0.0000) | 40.45(0.27) | 17(0) | 0.41(0.01) |
| 3. 1-PA | 0(0) | 7.32(0.00) | 1.4362(0.0000) | 36.54(0.14) | 10(0) | 0.48(0.06) |
| 4. 2-PA | 0(0) | 7.40(0.00) | 1.4376(0.0000) | 38.02(0.12) | 8(1) | 0.46(0.10) |
| 5. 1,2-PA | 0(0) | 7.14(0.00) | 1.4385(0.0000) | 79.56(0.88) | 9(0) | 0.42(0.10) |
| 1. Absolute EtOH | 30(0) | 7.07(0.00) | 1.4237(0.0000) | 35.17(0.04) | 23(0) | 0.20(0.00) |
| 2. 96.3% EtOH | 30(0) | 6.98(0.00) | 1.4248(0.0000) | 37.51(0.11) | 22(0) | 0.22(0.00) |
| 3. 1-PA | 20(0) | 6.99(0.00) | 1.4261(0.0000) | 31.92(0.08) | 21(0) | 0.30(0.01) |
| 4. 2-PA | 20(0) | 7.20(0.00) | 1.4263(0.0000) | 35.07(0.17) | 19(0) | 0.27(0.00) |
| 5. 1,2-PA | 10(0) | 6.92(0.00) | 1.4335(0.0000) | 118.18(0.07) | 29(0) | 0.29(0.01) |
a The mean of triplicate experiments; b The experiments were performed at 25 ± 1 °C; () = SD of triplicate experiments, σ = electrical conductivity, RI = refractive index, η = apparent viscosity, z-ave = mean particle size, PDI = polydispersity index.
Physical characterisations of MSKE-loaded microemulsion formulations.
| Formulations | σ a,b | pH a,b | RI a,b | η at 1000 s−1
a,b | z-ave a,b | PDI a,b |
|---|---|---|---|---|---|---|
| 1. Absolute EtOH | 0(0) | 6.98(0.00) | 1.4385(0.0000) | 50.26(0.49) | 16(0) | 0.43(0.01) |
| 2. 96.3% EtOH | 0(0) | 6.96(0.00) | 1.4362(0.0000) | 51.23(0.38) | 17(0) | 0.44(0.01) |
| 3. 1-PA | 0(0) | 6.98(0.00) | 1.4378(0.0000) | 41.00(0.15) | 10(0) | 0.43(0.01) |
| 4. 2-PA | 0(0) | 6.98(0.00) | 1.4371(0.0000) | 46.44(0.46) | 9(0) | 0.42(0.01) |
| 5. 1,2-PA * | 0(0) | 6.84(0.00) | 1.4385(0.0000) | 97.87(0.58) | 11(0) | 0.42(0.02) |
| 6. 1,2-PA ** | 0(0) | 6.70(0.00) | 1.4358(0.0000) | 135.75(1.21) | 70(1) | 0.27(0.01) |
| 1. Absolute EtOH | 30(0) | 6.85(0.00) | 1.4256(0.0000) | 41.77(0.13) | 21(0) | 0.30(0.00) |
| 2. 96.3% EtOH | 30(0) | 6.74(0.00) | 1.4248(0.0000) | 36.71(0.12) | 33(0) | 0.17(0.03) |
| 3. 1-PA | 20(0) | 6.78(0.00) | 1.4283(0.0000) | 34.33(0.09) | 25(0) | 0.29(0.00) |
| 4. 2-PA | 20(0) | 6.68(0.00) | 1.4280(0.0000) | 33.61(0.32) | 36(0) | 0.20(0.01) |
a The mean of triplicate experiments; b The experiments were performed at 25 ± 1 °C; () = SD of triplicate experiments, σ = electrical conductivity, RI = refractive index, η = apparent viscosity, z-ave = mean particle size, PDI = polydispersity index; * = MSKE-loaded w/o microemulsion containing IPM (44.55%) and aqueous phase of 1,2-PA (14.85%); ** = MSKE-loaded w/o microemulsion containing IPM (29.70%) and aqueous phase of 1,2-PA (29.70%).
Ex vivo skin permeation study.
| Samples | MSKE Content a,c | ||
|---|---|---|---|
| Epidermis | Dermis | Total | |
| 1% w/w of MSKE solution | 26.78 ± 3.39 | 13.77 ± 2.19 | 40.55 ± 1.23 |
|
| |||
| 1. Absolute EtOH | 225.42 ± 27.64 | 123.48 ± 6.18 | 348.90 ± 21.54 b |
| 2. 96.3% EtOH | 161.33 ± 17.00 | 150.79 ± 15.13 | 312.12 ± 9.07 b |
| 3. 1-PA | 1132.50 ± 36.23 | 687.97 ± 19.67 | 1820.47 ± 17.22 b |
| 4. 2-PA | 1075.59 ± 185.97 | 671.00 ± 116.23 | 1746.58 ± 130.00 b |
| 5. 1,2-PA * | 1076.27 ± 184.88 | 610.77 ± 102.78 | 1687.04 ± 84.07 b |
| 6. 1,2-PA ** | 637.38 ± 108.65 | 402.12 ± 66.55 | 1039.50 ± 49.24 b |
|
| |||
| 1. Absolute EtOH | 327.23 ± 53.04 | 573.07 ± 87.26 | 900.30 ± 34.30 b |
| 2. 96.3% EtOH | 130.26 ± 19.11 | 613.38 ± 12.33 | 743.64 ± 15.53 b |
| 3. 1-PA | 1070.11 ± 68.72 | 1358.90 ± 234.21 | 2429.01 ± 166.17 b |
| 4. 2-PA | 800.69 ± 138.21 | 1518.43 ± 159.00 | 2319.12 ± 29.05 b |
a The values are expressed as the mean ± SEM (n = 3); b Significant difference between total MSKE content of all MSKE-loaded microemulsions and MSKE solution (p < 0.05); c The amount of MSKE that penetrated into the skin layers was calculated from the content analysis of PGG in MSKE; * = MSKE-loaded w/o microemulsion containing IPM (44.55%) and aqueous phase of 1,2-PA (14.85%); ** = MSKE-loaded w/o microemulsion containing IPM (29.70%) and aqueous phase of 1,2-PA (29.70%).
Skin irritancy and skin corrosion study results using pig ear skin.
| Samples | ΔTEWL a,b | F a,c | |
|---|---|---|---|
| Water | 0.9 ± 0.3 |
| |
| 20% w/v of SDS solution | 24.6 ± 2.2 d |
| |
| 0.9% w/v of NaCl solution |
| 0.00 ± 0.00 | |
| 37% v/v of HNO3 solution |
| ||
| 1% w/w of MSKE solution | 1.5 ± 0.9 e | 4.82 ± 0.42 | |
|
| |||
| 1. Absolute EtOH | 3.2 ± 1.0 f | 4.12 ± 0.47 g | |
| 2. 96.3% EtOH | 4.0 ± 2.0 f | 7.47 ± 0.27 g | |
| 3. 1-PA | 3.1 ± 1.9 f | 11.32 ± 0.83 g | |
| 4. 2-PA | 4.1 ± 2.4 f | 6.59 ± 0.21 g | |
| 5. 1,2-PA * | 4.8 ± 0.8 f | 7.00 ± 1.07 g | |
| 6. 1,2-PA ** | 4.7 ± 1.8 f | 6.99 ± 1.05 g | |
|
| |||
| 1. Absolute EtOH | 5.1 ± 0.8 f | 8.05 ± 0.47 g | |
| 2. 96.3% EtOH | 5.6 ± 2.0 f | 7.85 ± 0.35 g | |
| 3. 1-PA | 5.4 ± 1.5 f | 6.56 ± 0.25 g | |
| 4. 2-PA | 5.9 ± 1.6 f | 9.56 ± 0.96 g | |
a The values are expressed as the mean ± SEM (n = 3); b ΔTEWL = the mean absolute increase of transepidermal water loss; c F = corrosive factor; d Significant difference between ΔTEWL of SDS solution and water (p < 0.05); e No significant difference between ΔTEWL of MSKE solution and water (p > 0.05); f No significant difference between ΔTEWL of all MSKE-loaded microemulsions and water (p > 0.05); g No significant difference of corrosive factor among MSKE-loaded microemulsion formulations (p > 0.05); * = MSKE-loaded w/o microemulsion containing IPM (44.55%) and aqueous phase of 1,2-PA (14.85%); ** = MSKE-loaded w/o microemulsion containing IPM (29.70%) and aqueous phase of 1,2-PA (29.70%).
Figure 2RP-HPLC chromatograms of the reference standard (PGG) and MSKE using a Gemini-NX C-18 reversed phase column (250 mm × 4.6 mm, 5 μm particle size) with a guard column. Mobile phase consisted of H3PO4 in water at pH 2 (solvent A) and ACN (solvent B). The total run time was 20 min and the gradient program was as follows: 20% B for 0–5 min, 20% B to 30% B for 10 min and 30% B to 20% B for 5 min. The flow rate was 1.1 mL/min. The injection volume was 75 μL. The UV detector was set at 280 nm.
Compositions of unloaded and MSKE-loaded microemulsions.
| Component | Unloaded | MSKE-Loaded | ||
|---|---|---|---|---|
| w/o | o/w | w/o | o/w | |
| MSKE | - | - | 1.00 | 1.00 |
| PSM:SM (1:1, by weight) | 40 | 40 | 39.60 | 39.60 |
| IPM | 45 | 30 | 44.55 | 29.70 |
| Water:Cosurfactant a (1:1, by weight) | 15 | 30 | 14.85 | 29.70 |
PSM = polyoxyethylene sorbitan monooleate; SM = sorbitan monododecanoate; a Cosurfactants were absolute EtOH, 96.3% EtOH, 1-PA, 2-PA and 1,2-PA.