Bio-guided Isolation of Antioxidant Compounds from Chrysophyllum perpulchrum, a Plant Used in the Ivory Coast Pharmacopeia
Abstract
:1. Introduction
2. Results and Discussion
2.1. Structural determination of the isolated compounds
2.2. Quantification and antioxidant activity
2.3. Total phenolics content
2.4. DPPH activity of the methanolic extract of C. perpulchrum and of the fractions
2.5. Inhibition of lipid peroxidation by the FTC method and TBARS
2.6. Correlations between total phenolic content and antioxidative function
3. Experimental
3.1. Chemicals and plant materials
3.1.1. Plant material
3.1.2. Chemicals
3.2. Extraction procedure
3.3. Determination of total phenolic compounds
3.4. Free radical scavenging ability on 2.2-diphenyl-1-picrylhydrazyl
3.5. Measurement of lipid peroxidation
3.5.1. Determination of hydroperoxides by the ferric thiocyanate (FTC) method
3.5.2. Determination of Thiobarbituric Acid-reacting Substances (TBARS)
3.6. LC-MS analysis
3.7. Isolation and characterization of catechin and its derivatives
3.8. Statistical analysis
4. Conclusions
Acknowledgements
References
- Mates, J.M.; Sanchez-Jimenez, F.M. Role of reactive oxygen species in apoptosis: implications for cancer therapy. Int. J. Biochem. Cell Biol. 2000, 32, 157–170. [Google Scholar] [CrossRef]
- Davia, M.L.; Gnudil, F. Phenolic compounds in surface water. Wat. Res. 1999, 33, 3213–3219. [Google Scholar] [CrossRef]
- Blasucci, L. All Health’s Breaking Loose: FYI on BHT. Environmental Working Group. http://www.ewg.org/node/26112 (accessed on 6 March 2008).
- Answers.com Dictionary. Butylated hydroxytoluene. http://www.answers. Com/topic/butylated-hydroxytoluene-1#wp-_note-1 (accessed on 13 November 2008).
- Ejaz, S.; Akram, W.; Lim, C.W.; Lee, J.J.; Hussain, I. Endocrine discrupting pesticides: a leading cause of cancer among rural people in Pakistan. Exp. Oncol. 2004, 26, 98–105. [Google Scholar] [PubMed]
- Barlow, S.M. Toxicological aspects of antioxidants used as food additives. In Food Antioxidants; Hudson, B.J.F., Ed.; Elsevier: London, UK, 1990; pp. 253–307. [Google Scholar]
- Cook, N.C.; Samman, S. Flavonoids-chemistry, metabolism, cardiodepressive effects, and dietary sources. Nutr. Biochem. 1996, 7, 66–76. [Google Scholar] [CrossRef]
- Louppe, D.; Oteng-Amoako, A.A.; Brink, M. (Eds.) Ressources Végétales de l’Afrique Tropicale 7(1): Bois d’oeuvre 1; Backhuys: Wageningen, The Netherlands, 2008; p. 785. [Google Scholar]
- Escribano-Bailón, T.; Olivier, D.; Brouillard, R. Coupling reactions between flavylium ions and catechin. Phytochemistry 1996, 41, 1583–1592. [Google Scholar] [CrossRef]
- John, L.; Phyllis, Coley, D.; Thomas, Kursar, A. Cinnamoyl glucosides of catechin and dimeric procyanidins from young leaves of Inga umbellifera (Fabaceae). Phytochemistry 2004, 65, 351–358. [Google Scholar]
- Torgils, F.; Saleh, R.; Øyvind, M.A. Dimeric anthocyanins from strawberry (Fragaria ananassa) consisting of pelargonidin 3-glucoside covalently linked to four flavan-3-ols. Phytochemistry 2004, 65, 1421–1428. [Google Scholar]
- Cabrera, C.; Artacho, R.; Gimenez, R. Beneficial effects of green tea - a review. J. Am. Coll. Nutr. 2006, 25, 79–99. [Google Scholar] [CrossRef] [PubMed]
- Lin, Y.S.; Tsai, Y.J.; Tsay, J.S.; Lin, J.K. Factors affecting the levels of tea polyphenols and caffeine in tea leaves. J. Agric. Food Chem. 2003, 51, 1864–1873. [Google Scholar] [CrossRef] [PubMed]
- Neiva, T.J.C.; Morais, L.; Polack, M.; Simoes, C.M.O.; D'amico, E.A. Effects of catechins on human blood platelet aggregation and lipid peroxidation. Phytother. Res. 1999, 13, 597–600. [Google Scholar] [CrossRef]
- Hatano, T.; Edamatsu, R.; Hiramatsu, M.; Mori, A.; Fujita, Y.; Yasuhara, T.; Yoshida, T.; Okuda, T. Effect of inreaction of tannins with co-existing substances VI. Effect of tannins and related polyphénols on superoxide anion radical and on DPPH radical. Chem. Pharm. Bull. 1989, 37, 2016–2021. [Google Scholar] [CrossRef]
- Duh, P.D.; Tu, Y.Y.; Yen, G.C. Antioxidant Activity of Water Extract of Harng Jyur (Chrysanthemum morifolium Ramat). Leb-ensm. Technol. 1999, 32, 269–277. [Google Scholar] [CrossRef]
- Tanaka, M.; Kuei, C.W.; Nagashima, Y.; Taguchi, T. Application of antioxidative maillard reaction products from histidine and glucose to sardine products. Nippon Sui. Gakk. 1998, 54, 1409–1414. [Google Scholar] [CrossRef]
- Chen, C.W.; Ho, C.T. Antioxidant properties of polyphenols extracted from green tea and black tea. J. Lipids 1995, 2, 35–46. [Google Scholar] [CrossRef]
- Gyamfi, M.A.; Aniya, Y. Medicinal herb, Thonningia sanguinea protects against aflatoxin B-1 acute hepatotoxicity in Fischer 344 rats. Hum. Expl. Toxicol. 1998, 17, 418–423. [Google Scholar] [CrossRef] [PubMed]
- N’guessan, J.D.; Zirihi, G.N.; Kra, A.K.M.; Kouakou, K.; Djaman, A.J.; Guedé-Guina, F. Free radical scavenging activity, flavonoid and phenolic contents of selected Ivoirian plants. Int. J. Nat. Appl. Sci. 2007, 4, 425–429. [Google Scholar]
- Mc Donald, S.; Prenzler, P.D.; Autolovich, M.; Robards, K. Phenolic content and antioxidant activity of olive extracts, Food Chem. 2001, 73, 73–84. [Google Scholar] [CrossRef]
- Favier, A. Le stress oxydant: Intérêt conceptuel et expérimental dans la compréhension des mécanismes des maladies et potentiel thérapeutique. L’actualité Chim. 2003, 269-270, 108–115. [Google Scholar]
- Rekka, E.; Kourounakis, P.N. Effect of hydroxyethyl rutosides and related compounds on lipid peroxidation and free radical scavenging activity. Some structural aspects. J. Pharm. Pharmacol. 1991, 43, 486–491. [Google Scholar] [CrossRef] [PubMed]
- Sergeant, C.; Hamon, C.; Simonoff, M.; Constans, J.; Conri, C.; Peuchant, C.; Delmas- Beauvieux, M.-C.; Clerc, C.; Pellegrin, J.L.; Leng, B.; Pellegrin, I.; Fleury, H. Oxidative Stress in Cancer, AIDS and Neurodegenerative Diseases; Montagnier, L., Olivier, R., Pasquier, C., Eds.; Marcel Dekker. Inc.: New York, NY, USA, 1998; pp. 409–427. [Google Scholar]
- Hsu, C.Y.; Chan, Y.P.; Chang, J. Antioxidant activity of extract from Polygonum cuspidatum. Biol. Res. 2007, 40, 13–21. [Google Scholar] [CrossRef] [PubMed]
- Caï, Y.Z.; Mei, S.; Jie, X.; Luo, Q.; Corke, H. Structure-radical scavenging activity relationships of phenolic compounds from traditional Chinese medicinal plants. Life Sci. 2006, 78, 2872–2888. [Google Scholar] [CrossRef] [PubMed]
- Kessler, M.; Ubeaud, G.; Jung, L. Anti- and pro-oxidant activity of rutin and quercetin derivatives. J. Pharm. Pharmacol. 2003, 55, 131–142. [Google Scholar] [CrossRef] [PubMed]
- Zhi, P.R.; Liang, L.Z.; Yi, M.L. Evaluation of antioxydant activity of Syzygium cumini leaves. Molecules 2008, 13, 2545–2556. [Google Scholar]
- Takao, T.; Kitatani, F.; Watanabe, N.; Yagi, A.; Sakata, K.A. Simple screening method for antioxidant and isolation of several antioxidant produced by marin bacteria from fish and shellfish. Biosci. Biotechnol. Biochem. 1994, 58, 1780–1783. [Google Scholar] [CrossRef]
- Kappus, H. Lipid peroxidation-Mechanism and biological relevance. In Free radicals and Food Additives; Aruoma, O.I., Halliwell, B., Eds.; Taylor and Francis: London, UK, 1991; pp. 59–75. [Google Scholar]
- Kahkonen, M.P.; Hopia, A.L.; Viorela, H.J.; Ranha, J.P.; Pihlaja, K.; Kujula, T.S. Antioxidant activities of plants extracts containing phenolic compounds. J. Agric. Food Chem. 1999, 47, 3954–3962. [Google Scholar] [CrossRef] [PubMed]
- Choi, C.W.; Kim, S.C.; Hwang, S.S.; Choi, B.K.; Ahn, H.J.; Lee, M.Z.; Park, S.H.; Kim, S.K. Antioxidant activity and free radical scavenging capacity between Korean medicinal plant and flavonoids by assay-guided comparison. Plant Sci. 2002, 163, 1161–1168. [Google Scholar] [CrossRef]
- Garcia, A.M.; De Pascual-Teresa, S.; Santos-Buelga, C.; Rivas-Gonzalo, J.C. Evaluation of antioxydant properties of fruits. Food Chem. 2004, 83, 13–18. [Google Scholar] [CrossRef]
Sample Availability: Samples of the compounds are available from the authors. |
Position | P1 | P2 | P3 | |||||
---|---|---|---|---|---|---|---|---|
C | H | C | H | C | H | |||
1 | - | - | - | - | - | - | ||
2 | 84.9 | 4.84(d, 3.4) | 84.4 | 4.84(d,3.4) | 80.5 | 5.29, (d, 3.4) | ||
3 | 70.9 | 4.78(m) | 70.6 | 4.78(m) | 68.7 | 4.50 (m, ) | ||
4 | 30.5 | 4α: 2.834(m) 4β: 2.527(m) | 29.9 | 4.13(d, 4.3) | 26.2 | 4.37 (d, 4.2) | ||
5 | 159.0 | - | 159.1 | - | 155.8 | - | ||
6 | 98.4 | 5.85(s) | 97.9 | 5.85(s) | 96.2 | 5.71 (s) | ||
7 | 159.9 | 158.8 | - | 154.7 | - | |||
8 | 97.5 | 5.92(s) | 96.8 | - | 105.1 | 5.75 (s) | ||
9 | 159.6 | - | 159.2 | - | 155.3 | - | ||
10 | 102.9 | - | 102.2 | - | 101.8 | - | ||
1’ | 134.3 | - | 134.1 | - | 132.5 | - | ||
2’ | 122.1 | 6.82(d, 8.5) | 122.8 | 6.82(d, 8.5) | 122.2 | 6.80 (d, 8.5) | ||
3’ | 118.1 | 6.75(d ; 8.5 ) | 118.0 | 6.75(d, 8.5 ) | 117.5 | 6.50(d, 8.5) | ||
4’ | 148.3 | - | 148.1 | - | 144.6 | - | ||
5’ | 148.3 | - | 148.1 | - | 147.2 | - | ||
6’ | 117.3 | 6.75(d; 8.5) | 118.0 | 6.75(d; 8.5) | 115.2 | 6.50 (d, 8.5) | ||
1’’ | - | - | - | - | - | - | ||
2’’ | 80.5 | 5.29, (d, 3.4) | 84.4 | 4.84(d, 3.4) | ||||
3’’ | 68.7 | 4.12 (m) | 70.6 | 4.78(m) | ||||
4’’ | 26.2 | 4’’α: 2.81 (m) 4’’β: 2.56 (m) | 29.9 | 4α: 2.83(m) 4β: 2.57(m) | ||||
5’’ | 155.8 | - | 159.1 | - | ||||
6’’ | 96.2 | 5.71 (s) | 97.9 | 5.85(s) | ||||
7’’ | 154.7 | - | 156.8 | - | ||||
8’’ | 105.1 | - | 105.2 | - | ||||
9’’ | 155.3 | - | 159.2 | - | ||||
10’’ | 101.8 | - | 102.2 | - | ||||
1’’’ | 132.5 | - | 134.1 | - | ||||
2’’’ | 122.2 | 6.80 (d, 8.5) | 122.8 | 6.82(d, 8.5) | ||||
3’’’ | 117.5 | 6.50(d, 8.5) | 118.0 | 6.75(d, 8.5 ) | ||||
4’’’ | 144.6 | - | 148.1 | - | ||||
5’’’ | 147.2 | - | 148.1 | - | ||||
6’’’ | 115.2 | 6.50 (d, 8.5) | 118.0 | 6.75(d; 8.5) | ||||
1a | - | |||||||
2a | 81.2 | 3.76 (m) | 81.2 | 3.76 (m) | ||||
3a | 73.2 | 3.40(m) | 73.2 | 3.40(m) | ||||
4a | 77.5 | 3.50 (m) | 77.5 | 3.50 (m) | ||||
5a | 75.6 | 3.73 (m) | 75.6 | 3.73 (m) | ||||
6a | 106.5 | 5.03 (d, 6.5) | 106.5 | 5.03 (d, 6.5) | ||||
7a | 65.3 | 3.54 (m) | 65.3 | 3.54 (m) |
Peaks | Peak areas | Concentration (mg/mL) | Amount (%) |
---|---|---|---|
Catechin (P1) | 402.5 | 0.054 | 5.4 |
Dimer 1 (P2) | 417.7 | 0.056 | 5.6 |
Dimer 2 (P3) | 653.7 | 0.092 | 9.2 |
Samples | Total phenolic content (mg GAE/g) |
---|---|
Total Extract | 74.00 ± 0.68 a |
F1 | 0.42 ± 0.02 c |
F2 | 1.48 ± 0.03 c d |
F3 | 7.03 ± 0.15 e |
F4 | 77.57 ± 0.56 ab |
RP12 | 80.62 ± 0.57 b |
RP3 | 31.76 ± 1.67 |
RP4 | 21.91 ± 0.78 |
RP5 | 8.62 ± 0.88 e |
RP6 | 5.05 ± 0.40 d e |
Samples | Quercetin | Extract | F4 | RP12 | P 1 | P 2 | P 3 |
---|---|---|---|---|---|---|---|
IC50 (µg/mL) | 2.00 ± 0.25 | 4.00 ± 0.12 | 3.92 ± 0.05 | 3.5 ± 0.19 | 2.5 ± 0.15 ns | 2.10 ± 0.09 ns | 2.05 ± 0.10 ns |
Samples | Inhibition (%) / FTC | Inhibition (%) / TBARS |
---|---|---|
Quercetin | 70.02 ± 3.89 | 81.55 ± 2.22 |
Total Extract | 64.57 ± 1.96 | 64.40 ± 1.22 |
F1 | 54.37 ± 222 | 54.35 ± 0.89 |
F2 | 52.03 ± 0.89 | 51.10 ± 1.96 |
F3 | 51.87 ± 0.89 | 54.00 ± 2.22 |
F4 | 67.03 ± 1.22 ns | 70.30 ± 3.89 ns |
RP12 | 68.02 ± 0.78 ns | 75.75 ± 0.85 ns |
P1 | 67.12 ± 2.55 ns | 77.6 ± 389 ns |
P2 | 68.02 ± 2.89 ns | 78.25 ± 2.56 ns |
P3 | 68.85 ± 1.96 ns | 80.10 ± 3.89 ns |
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Philippe, B.A.; Karine, N.; Barthélemy, A.K.; Noél, Z.G.; David, N.J.; Joseph, D.A.; Hosttetmann, K. Bio-guided Isolation of Antioxidant Compounds from Chrysophyllum perpulchrum, a Plant Used in the Ivory Coast Pharmacopeia. Molecules 2010, 15, 6386-6398. https://doi.org/10.3390/molecules15096386
Philippe BA, Karine N, Barthélemy AK, Noél ZG, David NJ, Joseph DA, Hosttetmann K. Bio-guided Isolation of Antioxidant Compounds from Chrysophyllum perpulchrum, a Plant Used in the Ivory Coast Pharmacopeia. Molecules. 2010; 15(9):6386-6398. https://doi.org/10.3390/molecules15096386
Chicago/Turabian StylePhilippe, Bidie Alain, Ndjoko Karine, Attioua Koffi Barthélemy, Zirihi Guédé Noél, N’guessan Jean David, Djaman Allico Joseph, and Kurt Hosttetmann. 2010. "Bio-guided Isolation of Antioxidant Compounds from Chrysophyllum perpulchrum, a Plant Used in the Ivory Coast Pharmacopeia" Molecules 15, no. 9: 6386-6398. https://doi.org/10.3390/molecules15096386
APA StylePhilippe, B. A., Karine, N., Barthélemy, A. K., Noél, Z. G., David, N. J., Joseph, D. A., & Hosttetmann, K. (2010). Bio-guided Isolation of Antioxidant Compounds from Chrysophyllum perpulchrum, a Plant Used in the Ivory Coast Pharmacopeia. Molecules, 15(9), 6386-6398. https://doi.org/10.3390/molecules15096386