The Australian Rainforest Rosewood: From Wood Characteristics to Chemical Profile and Biological Activity of Its Essential Oil
Abstract
1. Introduction
2. Results
2.1. Anatomical and Micromorphological Studies
2.2. Chemical Composition of Essential Oil
2.3. Biological Activities
2.3.1. Antioxidant and Anti-Inflammatory Activities
2.3.2. Antimicrobial Activity
3. Discussion
4. Materials and Methods
4.1. Chemicals
4.2. Plant Material and Essential Oil
4.3. Micromorphological and Anatomical Analyses
4.4. Gas Chromatography with Flame Ionization Detection (GC-FID) and Gas Chromatography–Mass Spectrometry (GC-MS) Analyses
4.5. Antioxidant and Anti-Inflammatory Assays
4.5.1. Trolox Equivalent Antioxidant Capacity (TEAC) Assay
4.5.2. Ferric Reducing Antioxidant Power (FRAP) Assay
4.5.3. Oxygen Radical Absorbance Capacity (ORAC) Assay
4.5.4. β-Carotene Bleaching (BCB) Assay
4.5.5. Iron Chelating Activity (ICA) Assay
4.5.6. Albumin Denaturation Assay (ADA)
4.5.7. Protease Inhibition Assay (PIA)
4.6. Antimicrobial Testing Procedure
4.7. Statistical Analysis
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| DFEO | Dysoxylum fraserianum Essential Oil |
| EO | Essential Oil |
| GC-FID | Gas Chromatography with Flame Ionization Detection |
| GC–MS | Gas Chromatography–Mass Spectrometry |
| LM | Light Microscopy |
| SEM | Scanning Electron Microscopy |
| EDS | Energy Dispersive X-ray Spectroscopy |
| TBO | Toluidine Blue O |
| TEAC | Trolox Equivalent Antioxidant Capacity |
| FRAP | Ferric Reducing Antioxidant Power |
| ORAC | Oxygen Radical Absorbance Capacity |
| BCB | β-Carotene Bleaching |
| ICA | Iron-Chelating Activity |
| ADA | Albumin Denaturation Assay |
| PIA | Protease Inhibitory Activity |
| MIC | Minimum Inhibitory Concentration |
| MFC | Minimum Fungicidal Concentration |
| RS | Reference Standard |
| PBS | Phosphate-Buffered Saline |
| CLSI | Clinical and Laboratory Standards Institute |
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| N. | Compound | % | KI (A) | KI (B) |
|---|---|---|---|---|
| 1 | δ-EIemene | 7.22 | 1235 | 1469 |
| 2 | Silphinene | 0.15 | 1259 | 1474 |
| 3 | α-Ylangene | 0.29 | 1265 | 1484 |
| 4 | Isoledene | 0.68 | 1266 | |
| 5 | α-Copaene | 0.50 | 1269 | 1491 |
| 6 | β-Patchoulene | 0.23 | 1284 | |
| 7 | β-Elemene | 0.63 | 1286 | 1591 |
| 8 | α-Gurjunene | 0.87 | 1294 | 1529 |
| 9 | 4,8-β-Epoxycaryophyllene | 0.13 | 1300 | 1955 |
| 10 | β-Caryophyllene | 8.43 | 1305 | 1598 |
| 11 | β-Gurjunene | 0.50 | 1312 | 1597 |
| 12 | α-Maaliene | 0.26 | 1318 | |
| 13 | Aromandendrene | 1.74 | 1323 | 1620 |
| 14 | 1,1,4,7-Tetramethyl-1a,2,3,4,6,7,7a,7b-octahydro-1H-cyclopropa[e]azulene | 1.00 | 1325 | |
| 15 | Selina-5,11-diene | 0.42 | 1327 | 1632 |
| 16 | Guaia-6,9-diene | 0.34 | 1329 | 1630 |
| 17 | Isogermacrene D | 1.87 | 1334 | 1665 |
| 18 | α-Humulene | 1.09 | 1338 | 1667 |
| 19 | allo-Aromadendrene | 0.40 | 1341 | 1649 |
| 20 | 9-epi-(E)-Caryophyllene | 1.00 | 1344 | 1593 |
| 21 | α-Patchoulene | 1.09 | 1347 | 1658 |
| 22 | γ-Gurjunene | 0.37 | 1350 | 1668 |
| 23 | Cadina-1(6),4-diene | 0.74 | 1359 | 1659 |
| 24 | γ-Muurolene | 3.88 | 1363 | 1690 |
| 25 | α-Amorphene | 3.60 | 1367 | 1693 |
| 26 | Ledene | 12.74 | 1382 | 1698 |
| 27 | α-Muurolene | 3.57 | 1387 | 1723 |
| 28 | δ-Guaiene | 1.37 | 1391 | |
| 29 | γ-Cadinene | 2.61 | 1399 | 1763 |
| 30 | cis-Calamenene | 0.42 | 1401 | 1834 |
| 31 | δ-Cadinene | 7.18 | 1406 | 1756 |
| 32 | α-Cadinene | 0.67 | 1417 | 1769 |
| 33 | Selina-3,7(11)-diene | 0.44 | 1419 | 1783 |
| 34 | α-Calacorene | 1.30 | 1421 | 1921 |
| 35 | Epiglobulol | 0.17 | 1435 | 2025 |
| 36 | Globulol | 3.16 | 1443 | 2082 |
| 37 | Caryophyllenyl alcohol | 1.33 | 1445 | |
| 38 | Viridiflorol | 1.07 | 1467 | 2090 |
| 39 | Cubeban-11-ol | 3.07 | 1470 | |
| 40 | Rosifoliol | 2.46 | 1478 | 2144 |
| 41 | Junenol | 2.45 | 1491 | |
| 42 | β-Eudesmol | 2.71 | 1498 | 2238 |
| 43 | Selin-6-en-4α-ol | 1.29 | 1494 | |
| 44 | Cubenol | 0.73 | 1496 | 2068 |
| 45 | γ-Eudesmol | 0.82 | 1498 | 2176 |
| 46 | τ-Cadinol | 4.72 | 1512 | 2151 |
| 47 | δ-Cadinol | 1.69 | 1516 | |
| 48 | α-Cadinol | 4.88 | 1525 | 2227 |
| 49 | epi-γ-Eudesmol | 0.24 | 1532 | 2106 |
| 50 | 1,2,3,5,6,7,8,8a-Octahydro-α,α,4,7-tetramethyl-1-Naphthalenemethanol | 0.63 | 1542 | |
| 51 | Eudesm-7(11)-en-4-ol | 0.18 | 1561 | 2302 |
| 52 | Guaiol acetate | 0.15 | 1598 | |
| Total | 99.48 | |||
| Sesquiterpene hydrocarbons | 67.18 | |||
| Oxygenated sesquiterpenes | 32.30 |
| Test | DFEO | RS a |
|---|---|---|
| mg/mL | µg/mL | |
| Trolox equivalent antioxidant capacity (TEAC) | 1.80 (1.45–2.24) | 3.78 (1.48–9.67) *** |
| Ferric reducing antioxidant power (FRAP) | 0.73 (0.61–0.87) | 3.72 (1.60–8.66) *** |
| Oxygen radical absorbance capacity (ORAC) | 0.21 (0.13–0.36) | 0.68 (0.22–82.17) *** |
| β-carotene bleaching (BCB) | 0.61 (0.46–0.83) | 0.35 (0.17–80.58) *** |
| Iron-chelating activity (ICA) | 0.82 (0.69–0.97) | 5.72 (2.32–87.13) *** |
| BSA denaturation assay (ADA) | 2.88 (2.45–3.39) | 17.05 (13.94–20.85) *** |
| Protease inhibitory activity (PIA) | 4.64 (1.32–8.92) | 28.50 (13.31–861.04) *** |
| Strain | DFEO | Reference Compound |
|---|---|---|
| MIC (µg/mL) | ||
| Gram-negative | Tobramycin | |
| Pseudomonas aeruginosa ATCC 9027 | 500 *** | 0.22 ± 0.01 |
| Escherichia coli ATCC 10536 | 500 *** | 0.48 ± 0.02 |
| Gram-positive | Vancomicin | |
| Staphylococcus aureus ATCC 6538 | 250 *** | 0.28 ± 0.01 |
| MFC (μg/mL) | ||
| Yeast | Caspofungin | |
| Candida albicans ATCC 10231 | >2000 *** | 0.061 ± 0.00 |
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Polito, F.; Cornara, L.; Malaspina, P.; La Neve, A.; La Camera, E.; Trevena, G.; Trombetta, D.; Feo, V.D.; Smeriglio, A. The Australian Rainforest Rosewood: From Wood Characteristics to Chemical Profile and Biological Activity of Its Essential Oil. Plants 2026, 15, 644. https://doi.org/10.3390/plants15040644
Polito F, Cornara L, Malaspina P, La Neve A, La Camera E, Trevena G, Trombetta D, Feo VD, Smeriglio A. The Australian Rainforest Rosewood: From Wood Characteristics to Chemical Profile and Biological Activity of Its Essential Oil. Plants. 2026; 15(4):644. https://doi.org/10.3390/plants15040644
Chicago/Turabian StylePolito, Flavio, Laura Cornara, Paola Malaspina, Annarita La Neve, Erminia La Camera, Greg Trevena, Domenico Trombetta, Vincenzo De Feo, and Antonella Smeriglio. 2026. "The Australian Rainforest Rosewood: From Wood Characteristics to Chemical Profile and Biological Activity of Its Essential Oil" Plants 15, no. 4: 644. https://doi.org/10.3390/plants15040644
APA StylePolito, F., Cornara, L., Malaspina, P., La Neve, A., La Camera, E., Trevena, G., Trombetta, D., Feo, V. D., & Smeriglio, A. (2026). The Australian Rainforest Rosewood: From Wood Characteristics to Chemical Profile and Biological Activity of Its Essential Oil. Plants, 15(4), 644. https://doi.org/10.3390/plants15040644

