Plectranthus amboinicus (Lour.) Spreng: Botanical, Phytochemical, Pharmacological and Nutritional Significance
Abstract
:1. Introduction
2. Botanical Description
2.1. Taxonomy
2.2. Morphological Feautures
2.3. Origin, Wild Relatives and Geographical Distribution
2.4. Cultivation
3. Phytochemistry
3.1. Volatile Composition of P. amboinicus
3.2. Non-Volatile Chemical Constituents of P. amboinicus
4. Bioactivities of P. amboinicus
4.1. Antimicrobial Activities
4.1.1. Antibacterial Activities
4.1.2. Antifungal Activities
4.1.3. Antiviral Activities
4.2. Respiratory Disorders
4.3. Activity against Digestive Diseases
4.4. Antiepileptic Activity
4.5. Antitumorigenic Activities
4.6. Anti-Inflammatory Activities
4.7. Wound Healing Activities
4.8. Effects against Skin Diseases
4.9. Effects against Animal and Insect Bites
4.10. Lactogenic Activity
4.11. Antioxidant Activities
4.12. Oral Diseases
4.13. Larvicidal Potential
4.14. Activity against Cardiovascular Disorders
4.15. Activity against Genitourinary Diseases
4.16. Analgesic Activity
4.17. Activity against Other Diseases
5. Culinary Uses
5.1. Nutritional Values
5.2. Use as a Food Additive
6. Ornamental and Other Social Uses
7. Conclusions and Recommendations
Acknowledgments
Author Contributions
Conflicts of Interest
Abbreviations
SPME: | Solid phase micro extraction |
GC: | Gas chromatography |
LSC: | Liquid-solid chromatography |
GLC: | Gas-liquid chromatography |
GC-MS: | Gas chromatography-mass spectroscopy |
GC-FID: | Gas chromatography outfitted with flame ionization detector (GC-FID) |
NMR: | Nuclear magnetic resonance |
UV: | Ultra violet |
HPLC: | High pressure liquid chromatography |
UPLC: | Ultra performance liquid chromatography |
GAE: | gallic acid equivalent |
TAE: | Tannic acid equivalent |
RE: | Rutin equivalent |
Pam-ZnO NPs: | P. amboinicus Zinc oxide nanoparticles |
TNF-α: | Tumor necrosis factor |
COX-2: | Cyclooxygenase 2 |
AP-1: | Activator protein-1 |
HWE: | Hot water extract (HWE) |
HE: | Hexane extract |
SDS-PAGE: | Sodium dodecyl sulfate polyacrylamide gel electrophoresis |
HSV 1: | Herpes simplex virus-1 |
STDs: | Sexually-transmitted diseases |
AIDS: | Acquired immune deficiency syndrome (AIDS) |
HIV: | Human immunodeficiency virus |
VSV: | Vesicular stomatitis virus |
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Country | Vernacular Names | Traditional Uses |
---|---|---|
Barbados | Poor man’s pork, Broad leaf thyme | Folk medicine, Culinary |
Cambodia | Sak dam ray | Folk medicine, Culinary |
China | Da shou xiang | Folk medicine, Home garden |
Cuba | orégano; orégano de Cartagena | Folk medicine, Culinary |
Fiji | Rhaivoki, Sage | Folk medicine, Culinary |
Germany | Jamaika thymian | Folk medicine, Culinary |
Guyana | Thick leaf thyme, broad leaf thyme | Folk medicine, Culinary |
India | Indian Borage, Pashan Bhedi, Karpooravalli, Patharchur | Folk medicine, Culinary, Home garden |
Indonesia | Torbangun, Daun Kutjing | Folk medicine, Culinary, Home garden |
Malaysia | Daun bangun-bangun, Pokok bangun-bangun | Folk medicine, Culinary, Home garden |
Philippines | Latai, Suganda, Oregano | Folk medicine, Culinary, Home garden |
Puerto Rico | Puerto Rican oregano brujo, Cuban oregano | Folk medicine, Culinary |
South Africa | Sup mint, French thyme, Indian mint | Folk medicine, Culinary, Home garden |
Thailand | Hom duan huu suea, Niam huu suea | Folk medicine, Culinary |
USA | Indian Borage, Country borage, Spanish thyme, Mexican mint, French thyme, Indian mint | Culinary, Home garden |
Vietnam | Can day la | Folk medicine, Culinary |
West Indies | French thyme, Spanish thyme, Broad-leaf thyme | Folk medicine, Culinary |
Compound Name | Formula | Plant Origin/Part | Method | References |
---|---|---|---|---|
Monoterpene hydrocarbons | ||||
δ-3-Carene | C10H16 | India, Malaysia, Morocco, Mauritius/Leaf | GC-MS | [29,30,31,32] |
p-Cymene | C10H14 | Brazil, India, Cambodia, Malaysia, Venezuela/Aerial parts, Leaf | GC-MS | [12,13,14,29,32,33,34,35,36,37,38] |
Limonene | C10H16 | India, Mauritius/Leaf | GC-MS | [29,30] |
β-Myrcene | C10H16 | Cambodia, India, Venezuela /Leaf | GC-MS | [13,29,34,36,38] |
Ocimene | C10H16 | Morocco/Leaf | GC-MS | [29,31] |
α-Phellandrene | C10H16 | India, Comoros, Mauritius, Venezuela/Leaf | GC-MS | [29,30,31,38] |
β-Phellandrene | C10H16 | India/Leaf | GC-MS | [14,35] |
α-Pinene | C10H16 | India, CambodiRa /Leaf | GC-MS | [29,36] |
β-Pinene | C10H16 | India/Leaf | GC-MS | [29] |
Sabinene | C10H16 | Cambodia,India, Morocco /Leaf | GC-MS | [29,31,36] |
α-Terpinene | C10H16 | India, Mauritius/Leaf | GC-MS | [14,29,30,34,35,39] |
γ-Terpinene | C10H16 | Brazil, Cambodia, Malaysia, Mauritius India, /Leaf | GC-MS | [13,14,29,30,32,34,35,36,37] |
α-Terpinolene | C10H16 | Morocco, Brazil/Leaf | GC-MS | [31,37] |
α-Thujene | C10H16 | India, Comoros, Venezuela/Leaf | GC-MS | [14,29,31,35,38] |
Oxygenated monoterpenes | ||||
Camphor | C10H16O | Comoros, Malaysia, Mauritius/Leaf | GC-MS | [30,31,32] |
Carvacrol | C10H14O | Cambodia, India, Malaysia, Mauritius, Venezuela/Aerial parts, Leaf, Flower | GC-MS | [12,13,14,28,29,30,32,33,34,35,38,39,40,41,42,43] |
Carvone | C10H14O | India/Leaf | GC-MS | [29] |
1,8-Cineole | C10H18O | India/Leaf | GC-MS | [12,26,27,29,41] |
Eugenol | C10H12O2 | Cambodia, India/Leaf | GC-MS | [29,36,39,40,41,44] |
Geraniol | C10H18O | Mauritius/Leaf | GC-MS | [30] |
Linalool | C10H18O | Comoros, Mauritius /Leaf | GC-MS | [30,31] |
Methyl carvacrol | C11H16O | India/Leaf | GC-MS | [29] |
Methyl eugenol | C11H14O2 | Cambodia/Leaf | GC-MS | [29,36] |
α-Terpineol | C10H18O | India, Comoros, Venezuela /Leaf | GC-MS | [29,31,38] |
Terpinen-4-ol | C10H18O | Brazil, India, Mauritius /Leaf | GC-MS | [12,13,29,30,31,37,39] |
Thymol | C10H14O | Brazil, Cambodia, India, Venezuela/Aerial parts, Leaf | GC-MS | [12,13,14,29,33,34,35,37,38,39,40,41,44,45] |
Thymol methyl ether | C11H16O | Brazil/Leaf | GC-MS | [37] |
Sesquiterpene hydrocarbons | ||||
α-Amorphene | C15H24 | Cambodia/Leaf | GC-MS | [36] |
Aromadendrene | C15H24 | Brazil, India/Leaf | GC-MS | [34,37] |
trans-α-Bergamotene | C15H24 | Brazil, Comoros, India, Venezuela /Leaf, Aerial parts, Flower | GC-MS | [13,31,33,37,38] |
trans-β-Bergamotene | C15H24 | Cambodia/Leaf | GC-MS | [36] |
γ-Cadinene | C15H24 | Cambodia/Leaf | GC-MS | [36] |
δ-Cadinene | C15H24 | India, Cambodia/Leaf | GC-MS | [13,29] |
α-Calacorene | C15H20 | India/Aerial parts | GC-MS | [33] |
cis-Calamenene | C15H22 | Cambodia/Leaf | GC-MS | [36] |
β-Caryophyllene | C15H24 | Brazil, India, Venezuela /Leaf, Flower | GC-MS | [13,29,31,33,34,37,38,41] |
γ-Caryophyllene | C15H24 | India/Leaf | GC-MS | [42] |
α-Copaene | C15H24 | Comoros, India /Leaf | GC-MS | [29,31] |
α-Cubebene | C15H24 | India/Leaf, Aerial parts | GC-MS | [13,33] |
(E,Z)-α-Farnesene | C15H24 | France /Leaf | GC-MS | [29,46] |
Germacrene D | C15H24 | Cambodia/Leaf | GC-MS | [36] |
γ-Gurjunene | C15H24 | India/Aerial parts | GC-MS | [33] |
Humulene | C15H24 | Brazil, Cambodia, India, Morocco, Venezuela/Leaf, Aerial parts | GC-MS | [14,31,33,35,36,37,38,45] |
α-Muurolene | C15H24 | Cambodia, France, Mauritius/Leaf | GC-MS | [30,36,46] |
Patchoulene | C15H24 | India, Mauritius/Leaf | GC-MS | [30,42] |
β-Selinene | C15H24 | India, Comoros/Leaf | GC-MS | [14,31,35,44] |
β-Sesquiphellandrene | C15H24 | Cambodia/Leaf | GC-MS | [46] |
Oxygenated sesquiterpenes | ||||
Caryophyllene oxide | C15H24O | India, Cambodia, Venezuela /Leaf, Aerial parts | GC-MS | [13,14,29,33,35,36,38,39,44] |
β-Cedrene epoxide | C15H24O | India/Aerial parts | GC-MS | [14,35] |
β-Copaen-4-α-ol | C15H24O | India/Aerial parts | GC-MS | [14,35] |
1-Epi-cubenol | C15H26O | India/Aerial parts | GC-MS | [14,35] |
β-Eudesmol | C15H26O | India/Leaf | GC-MS | [29] |
β-Himachalene oxide | C15H24O | India/Aerial parts | GC-MS | [14,35] |
Humulene oxide | C15H24O | India/Leaf | GC-MS | [29] |
Spathulenol | C15H24O | India/Leaf | GC-MS | [12,39] |
Others (Terpenes, phenylpropanoids, esters, fatty acids, alcohols, aldehyde) | ||||
1,2-Benzenediol 4-(1,1 dimethylethyl) | C10H14O2 | India/Leaf | GC-MS | [44] |
Chavicol | C9H10O | India/Leaf | GC-MS | [27,40] |
Methyl chavicol | C10H12O | India/Aerial parts | GC-MS | [14,33,35] |
α-Corocalene | C15H20 | India/Aerial parts | GC-MS | [33] |
Dihydro carveol | C10H18O | India/Aerial parts | GC-MS | [14,35] |
Durohydroquinone | C10H14O2 | India/Leaf | GC-MS | [44] |
1,4 Eicosadiene | C20H38 | India/Leaf | GC-MS | [44] |
Ethyl Salicylate | C9H10O3 | India/Leaf | GC-MS | [27,40] |
(Z)-1,3-Hexadiene | C6H10 | France /Leaf | GC-MS | [46] |
(Z)-3-Hexen-1-ol | C6H12O | France/Leaf | GC-MS | [29,46] |
Methyl octanoate | C9H18O2 | India/Aerial parts | GC-MS | [14,35] |
1-Octen-3-ol | C8H16O | India, Mauritius, Venezuela/Leaf | GC-MS | [29,30,38,39] |
Oleic acid | C18H34O2 | India/Leaf | GC-MS | [44] |
2-Phenyl ethyl tiglate | C13H16O2 | India/Aerial parts | GC-MS | [14,35] |
Phytol | C20H40O | India/Leaf | GC-MS | [44] |
Squalene | C30H50 | India/Leaf | GC-MS | [44] |
Tetradecanal | C14H28O | India/Aerial parts | GC-MS | [14,35] |
3,7,11,15–Tetramethyl-2-hexadecen-1-ol | C20H40O | India/Leaf | GC-MS | [44] |
Thymol acetate | C12H16O2 | India/Leaf | GC-MS | [29,39] |
Trans-sabinene hydrate | C12H20O2 | India/Aerial parts | GC-MS | [14,35] |
Undecanal | C11H22O | India/Aerial parts | GC-MS | [14,35] |
Compound Name | Formula | Plant Origin/Part | Analytical Method | References |
---|---|---|---|---|
Phenolic acids | ||||
Caffeic acid | C9H8O4 | India, Egypt/Leaf, stem, root (Methanol extract) | UV/NMR/UPLC/MS/HPLC | [48,51] |
Gallic acid | C7H6O5 | India/Stem (Methanol extract) | HPLC | [51] |
p-Coumaric acid | C9H8O3 | India, Egypt/Leaf, stem, root (Methanol and ethyl acetate fraction) | UV/NMR/UPLC/MS/HPLC | [48,51] |
Rosmarinic acid | C18H16O8 | India, Egypt, Thailand/Leaf, stem, root (Methanol and ethyl acetate fraction) | UV/NMR/UPLC/MS/HPLC | [48,51,52] |
Salvianolic acid A | C26H22O10 | Thailand/Aerial parts (Water extract) | UV/NMR/MS/HPLC | [52] |
Shimobashiric acid | C36H32O16 | Thailand/Aerial parts (Water extract) | UV/NMR/MS/HPLC | [52] |
Flavonoids | ||||
Chrysoeriol | C16H12O6 | Philippines, Egypt/Leaf, stem, root (Chloroform extract; Ethyl acetate fraction) | UV/NMR/UPLC/MS | [48,49] |
Cirsimaritin | C17H14O6 | Philippines/Leaf (Chloroform extract) | UV/NMR | [49] |
Eriodictyol | C15H12O6 | Egypt/Leaf, stem, root (Ethyl acetate fraction) | UV/NMR/UPLC/MS | [48] |
Luteolin | C15H10O6 | Egypt/Leaf, stem, root (Ethyl acetate fraction) | UV/NMR/UPLC-MS | [48] |
Rutin | C27H30O16 | India/Stem (Methanol extract) | HPLC | [51] |
Salvigenin | C18H16O6 | Philippines/Leaf (Chloroform extract) | UV/NMR | [49] |
Thymoquinone | C10H12O2 | Thailand/Aerial parts (Water extract) | UV/NMR/MS/HPLC | [52] |
Quercetin | C15H10O7 | Egypt/Leaf, stem, root (Ethyl acetate fraction) | UV/NMR/UPLC/MS/HPLC | [48,51] |
5,4′-Dihydroxy-6,7-dimethoxy flavone | C17H14O6 | Egypt/Leaf, stem, root (Ethyl acetate fractions) | UV/NMR/UPLC/MS | [48] |
5,4′-Dihydroxy-3,7-dimethoxy flavone | C17H14O6 | Egypt/Leaf, stem, root (Ethyl acetate fractions) | UV/NMR/UPLC/MS | [48] |
5-O-Methyl-luteolin | C16H12O6 | Egypt/Leaf, stem, root (Ethyl acetate fractions) | UV/NMR/UPLC/MS | [48] |
3,5,7,3′,4′-Pentahydroxy flavanone | C15H12O7 | Egypt/Leaf, stem, root (Ethyl acetate fractions) | UV/NMR/UPLC/MS | [48] |
4′,5,7-Trihydroxyflavone (apigenin) | C15H10O5 | Egypt/Leaf, stem, root (Ethyl acetate fractions) | UV/NMR/UPLC/MS | [48] |
Pharmacological Activity | Plant Part Used | Bioactive Compound | Potential Effect | References |
---|---|---|---|---|
Antibacterial activity | Leaf extract/Essential oil/Decoction | Biogenic zinc oxide nanoparticles | Pam-ZnO NPs control the growth of methicillin-resistant Staphylococcus aureus biofilm; inhibits growth of Escherichia coli, Salmonella typhimurium & Mycobacterium tuberculosis. | [54,55,56,57,58,59,60,61,62,63] |
Antifungal activity | Leaf extract/Essential oil | Carvacrol, p-Cymene, α-Terpinolene & β-caryophyllene | Fungitoxic properties against Aspergillus flavus, Aspergillus niger, Aspergillus ochraceus, Aspergillus oryzae, Candida versatilis, Fusarium sp. GF-1019, Penicillium sp., Saccharomyces cerevisiae, Candida albicans, C. tropicalis, C. krusei & C. stellatoidea. | [13,63] |
Antiviral activity | Leaf/Ethanolic extract | - | Exhibited antiviral activity against viruses (VSV, HSV1 & HIV). | [28,64,65,66] |
Activity against Respiratory diseases | Leaf extract/Decoction or juice/Essential oil | - | Used as folk medicine in brazil for influenza, cough, expectorant, bronchitis and throat problems; given orally to control asthma & catarrh; used as bronchodilator. | [11,12,67,68,69,70,71,72] |
Lavicidal potential | Leaf extract/Essential oil | Pam-ZnO NPs (zinc oxide nanoparticles) | Exhibited up to 100% mortality in Anopheles stephensi, Culex quinquefasciatus & Culex tritaeniorhynchus. | [14,47,62,73,74,75] |
Oral Diseases | Essential oil | Carvacrol | Antagonistic effect when used with mouthwash. | [76] |
Digestive diseases (Diarrhea, Constipation, dyspepsia, indigestion & as carminative) | Leaf extract/Juice | - | Stimulates growth of Lactobacillus plantarum and inhibits growth of selected food-borne pathogens (Escherichia coli & Salmonella typhimurium); relieves constipation troubles; prevents formation of gas in the gastrointestinal tract & facilitates expulsion of gas | [30,56,67,68,77] |
Antitumor activity | Leaf extract/Crude hydro alcoholic extracts | Flavone (Luteolin), flavonols | Inhibited the growth of sarcoma 180 & Ehrlich ascite carcinoma tumors in mice; showed significant anticancer activity through inducing apoptosis in A549 (human lung cancer) cell line. | [78,79] |
Antiinflammatory activity | Aerial part/Ethanol, methanol & hexane extract | Rosmarinic acid, Shimobashiric acid, alvianolic acid L, Rutin, Thymoquinone, Quercetin | Concentration of 0.1 mg/mL inhibited 10%–50% DNA binding activities; inhibited the binding of AP-1 to its consensus DNA sequence; decreased carrageenan-induced paw edema up to 40%; significantly increased IgG, IgM & lysozyme activity in rats. | [34,50,52,78,80] |
Analgesic activity | Leaf extract | - | Provides remedy for headache, backache & musculo-skeletal problems. | [52,81,82,83] |
Wound healing activities | Leaf & Root Aqueous extract | - | Increased wound healing activity in experimentally induced diabetic mice & againt murrels. | [60,84,85,86,87] |
Cardiovascular disorders | Leaf aqueous extract | - | Positive inotropic activity in the isolated frog heart; effective for treating congestive heart failure. | [67,88] |
Skin disease (Anti-dandruff, Cuts, Skin Allergy; Burns) | Leaf extract/Essential oil/Leaf juice/Paste | Thymol, 1,8-Cineole, β-Pinene, α-pinene, phenolic compounds | Inhibits the growth of Malassezia furfur; applied on cut as antiseptic promoted better healing; paste was effective against skin allergies, skin burns. | [68,89,90,91,92] |
Insect bites | Leaf aqueous extracts | - | Potency as antidote for scorpion (Heterometrus laoticus) venom with >50% efficiency. | [68,93] |
Lactogenic properties | Leaf | Nutrient content (iron & carotene) | Increased breast milk in new mothers. | [80] |
Anti-epileptic activity | Leaf, stem, root Extract (aqueous & alcoholic) | Alkaloids, flavonoids & saponins | Effective as an anticonvulsive and/or antiepileptic medicine. | [11,68,94] |
Activity against Genitourinary diseases | Leaf Decoction/Ethanolic & aqueous leaf extract | - | Effective against urinary diseases in the Amazon & India; to relieve kidney troubles, treat vaginal discharges; used after childbirth; increased urine volume & electrolyte concentration in male albino rats. | [67,69,95,96,97,98] |
Antioxidant activity | Leaf extracts/Essential oil | Carvocrol & Thymol | Exhibited significant inhibition in DPPH free radical & hydroxyl radical formation. | [16,34,99,100] |
Other diseases | Leaf | - | Fevers, meningitis, eye diseases. | [67,101,102,103] |
No. | Principles | Nutrient Content |
---|---|---|
1. | Proteins | 0.6% |
2. | Vitamins | |
+ Ascorbic acid | 0.003% | |
+ Thiamine | 0.00008% | |
3. | Minerals | |
+ Calcium | 0.158% | |
+ Phosphorous | 0.016% | |
+ Potassium | 0.138% | |
+ Sodium | 0.0047% | |
+ Magnesium | 0.088% | |
4. | Trace metals | |
+ Iron | 0.262% | |
+ Zinc | 0.0003% | |
+ Copper | 0.00012% | |
+ Chromium | 0.000022% | |
5. | Soluble dietary fibers | 0.31% |
6. | Insoluble dietary fibers | 1.56% |
7. | Phytic acid | 0.00092% |
8. | Soluble oxalate | 0.02% |
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Arumugam, G.; Swamy, M.K.; Sinniah, U.R. Plectranthus amboinicus (Lour.) Spreng: Botanical, Phytochemical, Pharmacological and Nutritional Significance. Molecules 2016, 21, 369. https://doi.org/10.3390/molecules21040369
Arumugam G, Swamy MK, Sinniah UR. Plectranthus amboinicus (Lour.) Spreng: Botanical, Phytochemical, Pharmacological and Nutritional Significance. Molecules. 2016; 21(4):369. https://doi.org/10.3390/molecules21040369
Chicago/Turabian StyleArumugam, Greetha, Mallappa Kumara Swamy, and Uma Rani Sinniah. 2016. "Plectranthus amboinicus (Lour.) Spreng: Botanical, Phytochemical, Pharmacological and Nutritional Significance" Molecules 21, no. 4: 369. https://doi.org/10.3390/molecules21040369
APA StyleArumugam, G., Swamy, M. K., & Sinniah, U. R. (2016). Plectranthus amboinicus (Lour.) Spreng: Botanical, Phytochemical, Pharmacological and Nutritional Significance. Molecules, 21(4), 369. https://doi.org/10.3390/molecules21040369