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Evaluation of Some Secondary Metabolites and Determination of the Antioxidant Potential of Different Extracts from the Plant of Pteridium aquilinum

DOI: 10.4236/ajac.2021.1212032, PP. 506-519

Keywords: Evaluation, Extracts, Secondary Metabolites, Potential Antioxidant, Pteridium aquilinum

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Abstract:

The present study aims to make an evaluation of some secondary metabolites and determination of the antioxidant potential of P. aquilinum plant extracts obtained by means of a simple and rapid TLC method. The latter revealed the presence of terpenes, sterols, steroids, flavonoids, polyphenols, saponins, sugars and amino acids. The evaluation of the potential antioxidant was assessed on phenolic and flavonoid compounds. These compounds’ dosages revealed different levels, but the highest antioxidant activity was found in the hydro-ethanol extract followed by the aqueous extract. Among the two families of evaluated antioxidants, phenolic compounds were found to be higher in the hydro-ethanolic extract (75.18 mgEAG/gMS), followed by the aqueous extract (66.78 mgEAG/gMS) and lower in the ethanolic extract (12.39 mgEAG/gMS). Whereas flavonoids, less significantly elevated, showed values of 2.58 mgECa/gMS for the hydro-ethanolic extract, 2.24 mgECa/gMS for the aqueous extract and 1.58 mgECa/gMS for the ethanolic extract. However, the antiradical activity was also evaluated. Contrary to the antioxidant activity, the most important antiradical activity was observed on the hydroethanolic extract with a rate of 3.61 mg/mL, then a weak activity on the aqueous and ethanolic extracts respectively 6.18 mg/mL and 15.81 mg/mL, then less important on the aqueous and hydro-ethanolic extracts respectively at levels of 6.18 mg/mL and 3.61 mg/mL.

References

[1]  Thomas, M. (2011) Nouvelles méthodologies d’extraction, de fractionnement et d’identification: Application aux molécules bioactives de l’argousier (Hippophaë rhamnoides) thèse de doctorat. Université Toulouse, Toulouse.
[2]  Rispail. N., Nash, R. and Webb, K.J. (2005) Secondary Métabolite Profiling. In: Márquez, A.J., Ed., Lotus japonicas Handbook, Springer, Dordrecht, 341-348.
https://doi.org/10.1007/1-4020-3735-X_33
[3]  Flora, S.J.S. (2009) Structural, Chemical and Biological Aspects of Antioxidants for Strategies against Metal and Metalloid Exposure. Oxidative Medicine and Cellular Longevity, 2, Article ID: 873634.
https://doi.org/10.4161/oxim.2.4.9112
[4]  Bartosz, G. (2003) Generation of Reactive Oxygen Species in Biological Systems. Comments on Toxicology, 9, 5-21.
https://doi.org/10.1080/08865140302420
[5]  Pourrut, B. (2008) Implication du stress oxydatif dans la toxicité du plomb sur une plante modèle, Vicia faba. Thèse pour l’obtention du Diplôme de Doctorat à l’Institut National Polytechnique de l’Université de Toulouse spécialité: Ecotoxicologie, France.
[6]  Favier, A. (2003) Le stress oxydant. Intérêt conceptuel et expérimental dans la compréhension des mécanismes des maladies et potentiel thérapeutique. L’actualité chimique, 11, 108-115.
[7]  BenTekaya, I. and Hassouna, M. (2005) Corps gras, Lipides, étude de la stabilité oxydative de l’huile d’olive vierge extra tunisienne au cours de son stockage. Oilseeds and Fats, Corps and Lipids, 12, 447-454.
https://doi.org/10.1051/ocl.2005.0447
[8]  Mezouar, D., Lahfa, F.B., Djaziri, R. and Boucherit-Otmani, Z. (2014) évaluation de l’activité antioxydante de Berberis vulgaris L. Phytothérapie, 12, 297-301.
https://doi.org/10.1007/s10298-014-0867-1
[9]  Derbel, S. and Ghedira, K. (2005) Les phytonutriments et leur impact sur la santé. Phytothérapie, 3, 28-34.
https://doi.org/10.1007/s10298-005-0061-6
[10]  Laguerre, M., Lecomte. J. and Villeneuve. P. (2007) Review of Evaluation of the Ability of Antioxidants to Counteract Lipid Oxidation: Existing Methods, New Trends and Challenges. Progress in Lipid Research, 46, 244-282.
https://doi.org/10.1016/j.plipres.2007.05.002
[11]  Mika, A., Minibayeva, F., Beckett, R. and Lüthje, S. (2004) Possible Functions of Extracellular Peroxidases in Stress-Induced Generation and Detoxification of Active Oxygen Species. Phytochemistry Reviews, 3, 173-193.
https://doi.org/10.1023/B:PHYT.0000047806.21626.49
[12]  Merouane, A., Noui, A., Medjahed, H., Nedjari Benhadj Ali, K. and Saadi, A. (2014) Activité antioxydante des composés phénoliques d’huile d’olive extraite par méthode traditionnelle. International Journal of Biological and Chemical Sciences, 8, 1865-1870.
https://doi.org/10.4314/ijbcs.v8i4.45
[13]  Scalbert, A. and Williamson, G. (2000) Dietary Intake and Bioavailablity of Polyphenols. The Journal of Nutrition, 130, 2073S-2085S.
https://doi.org/10.1093/jn/130.8.2073S
[14]  Hebi, M. and Eddouks, M. (2016) évaluation de l’activité antioxydante de Stevia rebaudiana. Phytothérapie, 14, 17-22.
https://doi.org/10.1007/s10298-015-0999-y
[15]  Akharalyi, F.C. and Boboye, B. (2010) Antibacterial and Phytochemical Evaluation of Three Medicinal Plants. Journal of Natural Products, 3, 27-34.
[16]  Bladt, S. and Wagner, H. (1996) Plant Drug Analysis, a Thin Layer Chromatography Atlas. 2nd Edition, Springer-Verlag, Berlin.
https://doi.org/10.1007/978-3-642-00574-9
[17]  Gangopadhyay, M., Dewanjee, S., Bhattacharya, N., Khanra, R. and Dua, T.K. (2015) Bioautography and Its Scope in the Field of Natural Product Chemistry. Journal of Pharmaceutical Analysis, 5, 75-84.
https://doi.org/10.1016/j.jpha.2014.06.002
[18]  N’Guessan, K., Kadja, B., Zirihi, G., Traoré, D. and Aké-Assi, L. (2009) Screening phytochimique de quelques plantes médicinales ivoiriennes utilisées en pays Krobou (Agboville, Côte-d’Ivoire). Sciences & Nature, 6, 1-15.
https://doi.org/10.4314/scinat.v6i1.48575
[19]  Mansouri, A., Embarek, G., Kokkalou, E. and Kefalas, P. (2005) Phenolic Profile and Antioxidant Activity of the Algerian Ripe Date Palm Fruit (Phoenix dactylifera). Food Chemistry, 89, 411-420.
https://doi.org/10.1016/j.foodchem.2004.02.051
[20]  Mensor, L.L., Menezes, F.S., Leitão, G.G., Reis, A.S., Santos, T.C., Coube, C.S. and Leitão, S.G. (2001) Screening of Brazilian Plant Extracts for Antioxidant Activity by the Use of DPPH Free Radical Method. Phytotherapy Research, 15, 127-130.
https://doi.org/10.1002/ptr.687
[21]  Brand-Williams, W., Cuvelier, M.E. and Berset, C. (1995) Use of a Free Radical Method to Evaluate Antioxidant Activity. Food Science and Technology, 28, 25-30.
https://doi.org/10.1016/S0023-6438(95)80008-5
[22]  Nouioua, W. (2012) Thème Biodiversité et Ressources phytogénétiques d’un écosystème forestier “Paeonia mascula (L.) Mill”, Mémoire présenté à la Faculté des Sciences de la nature et la vie Département de Biologie végétale et d’écologie Pour l’obtention du diplôme de MAGISTER Option: Biodiversité et gestion des écosystèmes.
[23]  Popovici, C., Saykova, I. and Tylkowski, B. (2009) Evaluation de l’activité antioxydant des composés phénoliques par la réactivité avec le radical libre DPPH. Revue de Génie Industriel, 4, 25-39.
[24]  Bastos, D.H., Saldanha, L.A., Catharino, R.R., Sawaya, A., Cunha, I.B., Carvalho, P.O., et al. (2007) Phenolic Antioxidants Identified by ESI-MS from Yerba Maté (Ilex paraguariensis) and Green Tea (Camelia sinensis) Extracts. Molecules, 12, 423-432.
https://doi.org/10.3390/12030423
[25]  Bekro, Y., Mamyrbekova, J., Boua, B., Bi, F.T. and Ehile, E. (2007) étude ethnobotanique et screening phytochimique de Caesalpinia benthamiana (Baill.) Herend. et Zarucchi (Caesalpiniaceae). Sciences & Nature, 4, 217-225.
https://doi.org/10.4314/scinat.v4i2.42146
[26]  Adou, L.M.D., Kone, M.W., Ipou, J.I. and N’Guessan, E.K. (2016) Ethnobotanique et analyse phytochimique qualitative de Pteridium aquilinum. (L.) Kühn (Dennstaedtiaceae), une Ptéridophyte utilisée comme plante médicinale en Côte d’Ivoire. International Journal of Biological and Chemical Sciences, 10, 1783-1792.
https://doi.org/10.4314/ijbcs.v10i4.27
[27]  Lukavky, K. (1996) les fougères, Rapport des associes de la biodiversité n°3 canada, 12 p.
[28]  Markham, K.R. (1982) Technique of Flavonoid Identification. Academic Press, London.
[29]  Rizk, A.M. (1982) Constituents of Plants Growing in Qatar. Fitoterapia, 52, 35-42.
[30]  Nguie, R., Gouollaly, T., Sompila, A.W.G.T., Moussounga, J.E., Dzondo, M.G., Pambou-Tobi, N.P.G., Diakabana, P. and Gampoula, R.H. (2021) Evaluation of Potential Extracts Antioxydant (Aqueous, Hydro-Ethanolic and Ethanolic) of an Aquatic Plant from the River Djoue (Ledermanniella schlechteri). Open Journal of Applied Sciences, 11, 254-263.
https://doi.org/10.4236/ojapps.2021.113018
[31]  Abdille, M., Singh, R., Jayaprakasha, G. and Jena, B. (2005) Antioxidant Activity of the Extracts from Dillenia indica Fruits. Food Chemistry, 90, 891-896.
https://doi.org/10.1016/j.foodchem.2004.09.002
[32]  Yao, L.H., Jiang, Y.M., Shi, J., Tomas-Barberan, F.A., Datta, N., Singanusong, R. and Chen, S.S. (2004) Flavonoids in Food and Their Health Benefits. Plant Foods for Human Nutrition, 59, 113-122.
https://doi.org/10.1007/s11130-004-0049-7
[33]  Muanda, F. (2010) Identification de polyphenols, évaluation de leur activité antioxydante et étude de leurs propriétés biologiques. Thèse de doctorat, Université paul verlaine-Metz, 294 p.
[34]  Ndiaye, E.M., Yousra, Y.E.I., Alioune, S., Ayessou, N.C., Harhar, H., Cisse, M. and Tabyaoui, M. (2021) Secondary Metabolites and Antioxidant Activity of Different Parts of the Baobab Fruit (Adansonia digitata L.). Food and Nutrition Sciences, 12, 732-741.
https://doi.org/10.4236/fns.2021.127055

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