Chemistry and Pharmacology of Citrus sinensis
Abstract
:1. Introduction
2. Botanical Description
3. Traditional Uses
4. Chemical Composition
5. Pharmacological Activities
5.1. Antibacterial Activity
5.2. Antifungal Activity
5.3. Antiparasitic Activity
5.4. Antiproliferative Activity
5.5. Antioxidant Activity
5.6. Hypocholesterolemic Activity
5.7. Anti-Obesity Activity
5.8. Activity in Cardiovascular System
5.9. Antiosteoporotic Activity
5.10. Protective of UV Activity
5.11. Relaxant, Sedative and Anxiolytic Activities
5.12. Insecticidal Activity
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Compound | Region of Collection | Plant Organ | References |
---|---|---|---|
Flavonoids: 1–54 | United States: Washington, Florida (2, 3, 21, 27, 50–54). India: Hisar, Shahjahanpur (1, 4). Pakistan (19, 28). Italy: Sicily, Messina (17, 18, 20, 22–26, 29–34). Spain: Murcia, Huelva (5–16). Germany: Braunschweig (35–42). Czech Republic: Prague (43–49) | Peel, flavedo, molasses, whole fruit, leaves | [15,16,17,18,19,20,21,22,23,24,25] |
Steroids: 55–56 | United States: Washington (55–56) | Leaves | [18] |
Hydroxylamide, alkane, Fatty acids: 57–60 | United States: Washington (57–60) | Leaves | [18] |
Coumarins: 61–67 | India: Shahjahanpur (61) United States: Florida (Lakeland) (62–67) | Peel, root | [26,27,28,29] |
Peptides: 68–70 | Japan: Wakayama (68–70) | Peel | [30] |
Carbohydrates: 71–74 | Sweden: Stockholm (71–74) | Fruit | [31] |
Carbamates, alkylamines: 75–78 | Spain: Valencia (75–78) | Fruit | [32] |
Carotenoids: 79–82 | Germany: Stuttgart (79–82) | Fruit | [33] |
Volatile compounds: 83–148 | Spain: Huelva (83–85, 87, 88, 90, 121–124, 138–141). China: Songzi (Hubei) (137, 125, 126, 143–148). Turkey: Dortyol–Hatay, Kozan (98–101, 105–110, 116, 120). United States: Florida (92–97, 111–119, 127–131). Germany: Steinheim (86, 89, 91, 102–104, 132–136, 142) | Fruit, orange blossom, peel, leave | [34,35,36,37,38,39] |
Potassium, magnesium, calcium and sodium | China: Beijing | Natural and commercial juices | [40] |
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Favela-Hernández, J.M.J.; González-Santiago, O.; Ramírez-Cabrera, M.A.; Esquivel-Ferriño, P.C.; Camacho-Corona, M.D.R. Chemistry and Pharmacology of Citrus sinensis. Molecules 2016, 21, 247. https://doi.org/10.3390/molecules21020247
Favela-Hernández JMJ, González-Santiago O, Ramírez-Cabrera MA, Esquivel-Ferriño PC, Camacho-Corona MDR. Chemistry and Pharmacology of Citrus sinensis. Molecules. 2016; 21(2):247. https://doi.org/10.3390/molecules21020247
Chicago/Turabian StyleFavela-Hernández, Juan Manuel J., Omar González-Santiago, Mónica A. Ramírez-Cabrera, Patricia C. Esquivel-Ferriño, and María Del Rayo Camacho-Corona. 2016. "Chemistry and Pharmacology of Citrus sinensis" Molecules 21, no. 2: 247. https://doi.org/10.3390/molecules21020247
APA StyleFavela-Hernández, J. M. J., González-Santiago, O., Ramírez-Cabrera, M. A., Esquivel-Ferriño, P. C., & Camacho-Corona, M. D. R. (2016). Chemistry and Pharmacology of Citrus sinensis. Molecules, 21(2), 247. https://doi.org/10.3390/molecules21020247