| Literature DB >> 28546841 |
Joyce Azzi1,2, Pierre-Edouard Danjou2, David Landy2, Steven Ruellan2, Lizette Auezova1, Hélène Greige-Gerges1, Sophie Fourmentin2.
Abstract
Nerolidol (Ner), a major component of many plant essential oils, is known for its various biological properties. However, the low solubility of Ner in water and its susceptibility to degradation limit its application. The aim of our study was to improve the solubility and photostability of Ner through its encapsulation in different cyclodextrins (CDs). The formation constants of cis-, trans-Ner and their commercial mixture with various CDs (α-CD, β-CD, γ-CD, HP-β-CD, RAMEB, CRYSMEB and SBE-β-CD) were determined by phase solubility studies and confirmed by the spectral displacement UV-visible method. The solubility of cabreuva essential oil (EO) rich in trans-Ner was also evaluated by total organic carbon (TOC) analysis. The encapsulation efficiency (EE %) of Ner in HP-β-CD solid complexes was assessed by HPLC. The structural characterization of CD/trans-Ner inclusion complex was then conducted by NMR spectroscopy followed by molecular modelling studies. The effect of encapsulation on the Ner photostability was also carried out over time under UVB irradiation. AL-type phase-solubility diagrams were obtained, suggesting the formation of 1:1 CD/Ner inclusion complexes. The solubility of Ner was enhanced by approximately 70-fold in the presence of 10 mM HP-β-CD. Moreover, high EE % values were obtained for 5:1 and 10:1 HP-β-CD:Ner molar ratios. NMR and molecular modelling studies revealed the most stable structure for trans-Ner inside the CD cavity with the OH group oriented towards the wider rim of the CD. Finally, CD encapsulation of Ner as pure compound or as main component of the cabreuva EO, protected it from degradation. This effect was more pronounced as the concentration of CD increased. These findings suggested that CDs are promising encapsulating carriers for Ner by enhancing its solubility and stability and thereby its application in food industry.Entities:
Keywords: cabreuva essential oil; cyclodextrins; nerolidol; photostability; solubility
Year: 2017 PMID: 28546841 PMCID: PMC5433144 DOI: 10.3762/bjoc.13.84
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Figure 1Chemical structure of β-CD (a) and β-CD derivatives (b).
Figure 2Phase solubility diagrams of CD/trans-Ner inclusion complexes.
Formation constants (Kf), solubility enhancement ratio (St/S0) (in the presence of 10 mM CD, except for β-CD and γ-CD, 1mM) and complexation efficiency (CE) of cis and trans-Ner with different CDs.
| cis-Ner | trans-Ner | Nerb | |||||
| CDs | St/S0 | CEa | St/S0 | CE | |||
| α-CD | 81 | 1.85 | 0.002 | 619 | 8.80 | 0.021 | 418 |
| β-CD | 769 | 1.49 | 0.019 | 1233 | 1.80 | 0.043 | 1238 |
| γ-CD | 1866 | 2.76 | 0.046 | 752 | 1.68 | 0.026 | 1435 |
| HP-β-CD | 5540 | 51.53 | 0.137 | 9515 | 75.37 | 0.328 | 10365 |
| RAMEB | 8149 | 72.62 | 0.202 | 15577 | 104.40 | 0.537 | 19450 |
| CRYSMEB | 8787 | 72.77 | 0.217 | 14036 | 98.80 | 0.484 | 15412 |
| SBE-β-CD | 9240 | 80.20 | 0.229 | 13264 | 94.66 | 0.457 | 17768 |
aCE: complexation efficiency ([CD/Ner])/[CD]).
bNer: formation constant for the commercial mixture.
Formation constants (Kf) of HP-β-CD inclusion complexes with Ner obtained by phase solubility and UV-visible competition method.
| Formation constants (M−1) | HP-β-CD | |
| Phase solubility | Ner | 10365 |
| UV–visible | MO | 7429 |
| Ner | 8168 | |
Figure 3Phase solubility profile of cabreuva EO obtained by the TOC method.
1H NMR chemical shifts (δ, ppm) for free β-CD and β-CD/trans-Ner inclusion complex solutions in D2O in the presence of 0.5 mM β-CD and 3.28 mM trans-Ner.
| β-CD 1H | δ(free) (ppm) | δ(complex) (ppm) | ∆ δ (ppm) |
| H1 | 5.11 | 5.08 | −0.03 |
| H2 | 3.70 | 3.67 | −0.03 |
| H4 | 3.62 | 3.61 | −0.01 |
| H3 | 4.00 | 3.93 | −0.07 |
| H5 | 3.89 | 3.77 | −0.12 |
| H6 | 3.91 | 3.83 | −0.08 |
Figure 4a) 2D ROESY spectrum of β-CD/trans-Ner inclusion complex in D2O and b) representation of the most stable inclusion complex conformer.
Figure 5Photodegradation kinetics of cis-Ner (a), trans-Ner (b), the isomer mixture Ner (c) in the absence and presence of increasing concentrations of HP-β-CD (0.5, 1 and 10 mM) and of trans-Ner in cabreuva EO (d) in the absence and presence of 1 mM HP-β-CD under UV light irradiation.
Photodegradation rate constants (K, min−1, Equation 3) of CD/Ner inclusion complexes upon UVB irradiation.
| K (min−1) | Ner | ||
| No CD | 0.0121 | 0.0145 | 0.0134 |
| α-CD | 0.0051 | 0.0051 | 0.0051 |
| β-CD | 0.0019 | 0.0010 | 0.0013 |
| HP-β-CD | 0.0017 | 0.0012 | 0.0014 |
| SBE- β-CD | 0.0012 | 0.0007 | 0.0009 |