Hypericum japonicum Thunb. ex Murray: Phytochemistry, Pharmacology, Quality Control and Pharmacokinetics of an Important Herbal Medicine
Abstract
:1. Introduction
2. Phytochemistry
No. | Compounds | Classes | References | |
---|---|---|---|---|
1 | Quercetin | Flavonoid | [6] | |
2 | Quercitrin | Flavonoid | [6] | |
3 | Isoquercitrin | Flavonoid | [7] | |
4 | Quercetin-7-O-α-l-rhamnoside | Flavonoid | [7] | |
5 | Quercetin-3-O-α-l-rhamnosyl(1→2)-O-α-l-rhamnoside | Flavonoid | [7] | |
6 | Rutin | Flavonoid | [8] | |
7 | Kaempferol | Flavonoid | [7] | |
8 | Kaempferol-7-O-α-l-rhamnoside | Flavonoid | [7] | |
9 | 5,7,3',4'-Tetrahydroxy-3-methoxyflavone | Flavonoid | [9] | |
10 | Taxifolin-3,7-O-α-l-dirhamnoside | Flavonoid | [10] | |
11 | Sarothranol | Flavonoid | [11] | |
12 | 7,8-(2'',2''-Dimethylpyrano)-5,3',4'-trihydroxy-3-methoxyflavone | Flavonoid | [7] | |
13 | 3,5,7,3',5'-Pentahydroxyflavonol | Flavonoid | [9] | |
14 | Dihydrokaempferol | Flavonoid | [12] | |
15 | (2R,3R)-Dihydroquercetin-3,7-O-α-l-dirhamnoside | Flavonoid | [7] | |
16 | (2R,3R)-Dihydroquercetin-7-O-α-l-rhamnoside | Flavonoid | [7] | |
17 | (2R,3R)-Dihydroquercetin | Flavonoid | [7] | |
18 | 2,3- Trans-dihydro-3,5,4'-trihydroxyflavonol-7-O-α-l-rhamnoside | Flavonoid | [7] | |
19 | 3,8''-Biapigenin | Flavonoid | [6] | |
20 | Japonicin A | Phloroglucinol | [13] | |
21 | Japonicin B | Phloroglucinol | [13] | |
22 | Japonicin C | Phloroglucinol | [13] | |
23 | Japonicin D | Phloroglucinol | [13] | |
24 | Sarothralen A | Phloroglucinol | [14] | |
25 | Sarothralen B | Phloroglucinol | [14] | |
26 | Sarothralen C | Phloroglucinol | [15] | |
27 | Sarothralen D | Phloroglucinol | [15] | |
28 | Saroaspidin A | Phloroglucinol | [16] | |
29 | Sarothralin G | Phloroglucinol | [17] | |
30 | Sarothralin | Phloroglucinol | [18] | |
31 | 4,6-Dimethyl-1-O-[α-l-rhamnosyl(1→6)-β-d-glucosyl] multifidol | Phloroglucinol | [19] | |
32 | 1,5,6-Trihydroxyxanthone | Xanthone | [7] | |
33 | 1,3,5,6-Tetrahydroxy-4-prenylxanthone | Xanthone | [7] | |
34 | 1,5-Dihydroxyxanthone-6-O-β-d-glucoside | Xanthone | [7] | |
35 | 1,3,5,6-Tetrahydroxyxanthonin | Xanthone | [20] | |
36 | 1,3,6,7-Tetrahydroxyxanthonin | Xanthone | [20] | |
37 | 1,3,5-Trihydroxyxanthone | Xanthone | [20] | |
38 | Isojacareubin | Xanthone | [7] | |
39 | Deoxyisojacareubin | Xanthone | [7] | |
40 | 4',5'-Dihydro-1,5,6-trihydroxy-4',4',5'-trimethylfurano(2'3':4,5) xanthone | Xanthone | [7] | |
41 | Bijaponicaxanthone | Xanthone | [7] | |
42 | 5,7-Dihydroxy-2-isopropyl-chromone-8-β-d-glucoside | Chromone | [7] | |
43 | 5,7-Dihydroxy-2-(1-methylpropyl) chromone-8-β-d-glucoside | Chromone | [7] | |
44 | Sarolactone | Chromone | [21] | |
45 | Stigmasterol | Triterpene | [6] | |
46 | Stigmasterol-3-O-β-d-glucoside | Triterpene | [6] | |
47 | Betulinic acid | Triterpene | [6] | |
48 | Chlorogenic acid | Phenolic acid | [12] | |
49 | Vanillic acid | Phenolic acid | [22] | |
50 | 3,4-Dihydroxybenzoic acid | Phenolic acid | [23] | |
51 | Octadecyl caffeate | Phenol | [23] | |
52 | 2-Acetyl-3,5-dihydroxy-1-geranoxy-6-methyl-4-(2-methyl)butyryl-benzene | Phenol | [24] | |
53 | (−)-Epicatechin | Phenol | [23] | |
54 | Flavesone | Ketone | [24] | |
55 | 9-Geranyl-α-terpineol | Alcohol | [24] | |
56 | β-Sitosterol | Sterol | [23] |
2.1. Flavonoids
2.2. Phloroglucinols
2.3. Xanthones
2.4. Other Compounds
Roots | Aerial Parts | ||
---|---|---|---|
Compound | Relative Percentage | Compound | Relative Percentage |
Dodecyl acetate | 20.59% | Undecane | 19.25% |
Decyl dichlorocetate | 13.09% | Dodecyl acetate | 16.86% |
3-Methyl oxirane-2-methanol | 9.37% | (E)-β-Farnesene | 10.84% |
Capraldehyde | 8.41% | β-Curcumin | 10.32% |
β-Caryophyllene | 8.13% | Tetradecanol | 6.54% |
(E)-β-Farnesene | 5.74% | 2,6-Bimethyl-6-(4-methyl-3-pentenyl)bicyclo[3.1.1]hept-2-ene | 6.15% |
Nonane | 5.18% |
2.5. Volatile Oil
2.6. Metallic Elements
3. Pharmacology
3.1. Antioxidant Activity
3.2. Hepatoprotective Activity
3.3. Anti-Cancerous Activity
3.4. Antibacterial Activity
3.6. Effects on Cardiovascular System
3.7. Effects on Immunity
4. Quality Control
Analytes | Extraction Methods | Columns | Mobile Phase | Analytical Time | Detections | References | ||||
---|---|---|---|---|---|---|---|---|---|---|
Isojacareubin | Refluxing extraction with 75% (v/v) methanol aqueous solution | C18 (Diamonsil, 4.6 mm × 200 mm, 5 μm) | Acetonitrile-methanol-water-phosphoric acid (45:15:50:0.05); flow rate: 1.0 mL/min | 40 min | UV 254 nm | [49] | ||||
Isojacareubin | Ultrasonic extraction with 80% (v/v) ethanol aqueous solution | C18 (Hypersil, 4.6 mm × 250 mm, 5 μm) | Acetonitrile-0.04% phosphoric acid (47:53); flow rate: 1.0 mL/min | 28 min | UV 254 nm | [50] | ||||
Quercetin-7-O-α- l-rhamnoside | Refluxing extraction with 60% (v/v) ethanol aqueous solution | C18 (Hypersil, 4.6 mm × 250 mm, 5 μm) | Acetonitrile-0.04% phosphoric acid (77:23); flow rate: 1.0 mL/min | 20 min | UV 371 nm | [51] | ||||
Quercetin | Refluxing extraction with methanol and 25% hydrochloric acid aqueous solution (3:1) | C18 (Diamonsil, 4.6 mm × 250 mm, 5 μm) | Methanol-0.06% phosphoric acid (52:48); flow rate: 1.0 mL/min | 20 min | UV 360 nm | [52] | ||||
Quercitrin | Ultrasonic extraction with ethanol | C18 (Agilent, 4.6 mm × 250 mm, 5 μm) | Acetonitrile-0.05 mol/L potassium dihydrogenphosphate (19:81); flow rate: 1.0 mL/min | 40 min | UV 256 nm | [53] | ||||
Quercetin, quercitrin and isoquercitrin | Ultrasonic extraction with 80% (v/v) methanol aqueous solution | C18 (Hypersil, 4.6 mm × 250 mm, 5 μm) | Acetonitrile-0.02 mol/L potassium dihydrogenphosphate (14:86) with gradient elution; flow rate: 1.0 mL/min | 45 min | UV 360 nm | [54] | ||||
Quercetin, rutin and isorhamnetin | Soxhlet extraction with methanol | BDS-C18 (Agilent, 4.6 mm × 250 mm, 5 μm) | Methanol-0.2% phosphoric acid (52:48); flow rate: 1.0 mL/min | 16 min | UV 260 nm | [8] | ||||
Quercetin, rutin and isorhamnetin | Ultrasonic extraction with 60% (v/v) ethanol aqueous solution | C18 (Agilent, 4.6 mm × 250 mm, 5 μm) | Methanol-0.2% phosphoric acid (54:46); flow rate: 1.0 mL/min | 15 min | UV 261 nm | [55] | ||||
Quercetin, quercitrin, isoquercitrin and quercetin-7-O-α-l-rhamnoside | Refluxing extraction with 60% (v/v) ethanol aqueous solution | SB-C18 (Agilent ZORBAX, 4.6 mm × 250 mm, 5 μm) | Acetonitrile-0.5% acetic acid (12:88) with gradient elution; flow rate: 1.0 mL/min | 45 min | UV 360 nm | [56] | ||||
Quercetin, quercitrin, isoquercitrin and quercetin-7-O-α-l-rhamnoside | Refluxing extraction with water | HC C18 (Agilent, 4.0 mm × 250 mm, 5 μm) | Methanol-2.5% acetic acid (36:64); flow rate: 1.0 mL/min | 50 min | UV 255 nm | [57] | ||||
Quercetin, quercitrin, isoquercitrin, taxifolin-7-O-α-l-rhamnoside and kaempferol | Ultrasonic extraction with 50% (v/v) methanol aqueous solution | C18 (Luna, 4.6 mm × 250 mm, 5 μm) | Methanol-0.5% acetic acid (54:46); flow rate: 1.0 mL/min | 50 min | UV 350 nm | [58] | ||||
Quercetin, quercitrin, isoquercitrin, quercetin-7-O-α-l-rhamnoside and taxfolin-7-O-α-l-rhamnoside | Ultrasonic extraction with 70% (v/v) methanol aqueous solution | SB-C18 (Agilent ZORBAX, 4.6 mm × 250 mm, 5 μm) | Acetonitrile-0.5% formic acid (12:88) with gradient elution; flow rate: 1.0 mL/min | 70 min | UV 256 nm and MS | [59] | ||||
Quercetin, quercitrin, isoquercitrin, rutin, kaempferol and quercetin-3-O-galactoside | Refluxing extraction with 80% (v/v) methanol aqueous solution | C18 (Alltima, 4.6 mm × 250 mm, 5 μm) | Acetonitrile-0.8% acetic acid (11:89) with gradient elution; flow rate: 0.8 mL/min | 70 min | UV 254 nm and MS | [60] | ||||
Quercetin, quercitrin, isoquercitrin, quercetin-7-O-α-rhamnoside, 3,4-dihydroxybenzoic acid, taxifolin-7-O-α-l-rhamnoside, 5,7-dihydroxy-2-isopropyl and chormone-8-β-D-glucoside | Ultrasonic extraction with 70% (v/v) methanol aqueous solution | XB-C18 (Ultimate, 4.6 mm × 250 mm, 5 μm) | Methanol-water (5:95) with gradient elution; flow rate: 1.0 mL/min | 100 min | UV 254 nm and MS | [61] |
5. Pharmacokinetics
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Liu, L.-S.; Liu, M.-H.; He, J.-Y. Hypericum japonicum Thunb. ex Murray: Phytochemistry, Pharmacology, Quality Control and Pharmacokinetics of an Important Herbal Medicine. Molecules 2014, 19, 10733-10754. https://doi.org/10.3390/molecules190810733
Liu L-S, Liu M-H, He J-Y. Hypericum japonicum Thunb. ex Murray: Phytochemistry, Pharmacology, Quality Control and Pharmacokinetics of an Important Herbal Medicine. Molecules. 2014; 19(8):10733-10754. https://doi.org/10.3390/molecules190810733
Chicago/Turabian StyleLiu, Lin-Sheng, Meng-Hua Liu, and Jing-Yu He. 2014. "Hypericum japonicum Thunb. ex Murray: Phytochemistry, Pharmacology, Quality Control and Pharmacokinetics of an Important Herbal Medicine" Molecules 19, no. 8: 10733-10754. https://doi.org/10.3390/molecules190810733
APA StyleLiu, L. -S., Liu, M. -H., & He, J. -Y. (2014). Hypericum japonicum Thunb. ex Murray: Phytochemistry, Pharmacology, Quality Control and Pharmacokinetics of an Important Herbal Medicine. Molecules, 19(8), 10733-10754. https://doi.org/10.3390/molecules190810733