| Literature DB >> 30413007 |
Edenilson Dos Santos Niculau1,2, Leandro do Prado Ribeiro3, Thiago Felipe Ansante4, João Batista Fernandes5, Moacir Rossi Forim6, Paulo Cezar Vieira7, José Djair Vendramim8, Maria Fátima das Graças Fernandes da Silva9.
Abstract
A high performance liquid chromatography (HPLC) method was developed for the simultaneous isolation, on a semi-preparative scale, of chavibetol and methyleugenol from the crude essential oil of P. pseudocaryophyllus leaves. The purity of the isolated compounds and their quantifications were developed using GC/FID. Chavibetol was isolated with high purity (98.7%) and mass recovery (94.6%). The mass recovery (86.4%) and purity (85.3%) of methyleugenol were lower than those of chavibetol. Both compounds were identified on the basis of spectral analysis. The results suggest that the method can provide chavibetol with high purity, mass recovery, and productivity from crude essential, which will be used in bioassays against stored insect pests.Entities:
Keywords: GC/MS; HPLC isolation; chavibetol; essential oil; methyleugenol; natural products
Mesh:
Substances:
Year: 2018 PMID: 30413007 PMCID: PMC6278253 DOI: 10.3390/molecules23112909
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Chemical structures of chavibetol, eugenol, and methyleugenol.
Figure 2Chromatogram of crude essential oil from the P. pseudocaryophyllus leaves obtained from HPLC in analytical (A) and semi-preparative scale (B). Peak 1 (methyleugenol) and peak 2 (chavibetol).
Summary of the results for the isolation of chavibetol and methyleugenol by HPLC.
| Parameter | Chavibetol | Methyleugenol |
|---|---|---|
| Isolated mass (mg) | 102.7 | 27.9 |
| Purity (%) | 98.7 | 85.3 |
| Mass recovery (%) | 94.6 | 86.4 |
| Processing time | 11 injections: 1.5 h | 11 injections: 1.5 h |
| Solvent consumption (mL) | 528 | 528 |
| Productivity (mg/h) | 68.5 | 18.6 |
| Solvent consumption/isolated mass (mL/mg) | 5.1 | 18.9 |
Figure 3GC/FID chromatogram from the isolated fraction containing chavibetol (peak 2, 98.7%).
Figure 4GC/FID chromatogram from the isolated fraction containing methyleugenol (peak 9, 85.3%).
Figure 5GC/MS mass spectrum of the isolated fraction containing chavibetol. 70 eV electron impact.
1H (400 MHz, CDCl3) and 13C-NMR (100 MHz, CDCl3) data of methyleugenol and chavibetol.
| Position | Methyleugenol | Chavibetol | ||
|---|---|---|---|---|
| 1H-NMR | 13C-NMR | 1H-NMR | 13C-NMR | |
| 1 | - | 132.6 | - | 133.4 |
| 2 | 6.72 (d, 1H, | 111.2 | 6.79 (d, 1H, | 114.8 |
| 3 | - | 147.4 | - | 144.9 |
| 4 | - | 148.9 | - | 145.5 |
| 5 | 6.81 (d, 1H, | 120.4 | 6.80 (d, 1H, | 119.8 |
| 6 | 6.73 (dd, 1H, | 111.8 | 6.68 (dd, 1H, | 110.6 |
| 7 | 3.35 (dl, 2H, | 39.8 | 3.30 (d, 2H, | 39.6 |
| 8 | 5.97 (tdd, 1H, | 137.7 | 5.95 (m, 1H) | 137.6 |
| 9 | 5.07 (m, 2H) | 115.6 | 5.07 (m, 2H) | 115.5 |
| 3-OCH3 | 3.88 | 55.9 | - | - |
| 4-OCH3 | 3.87 | 55.8 | 3.88 (s, 3H, –OCH3) | 56.0 |
| OH | - | - | 5.60 (s, 1H, –OH) | - |
Figure 6GC/MS mass spectrum of the isolated fraction containing methyleugenol. 70 eV electron impact.