Antiradical and Sedative Non-Hypnotic Effect of Tikoni Tea Extract from Leaves of Vitex madiensis Oliv. (Lamiaceae) Locally Used in Congolese Villages — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Antiradical and Sedative Non-Hypnotic Effect of Tikoni Tea Extract from Leaves of Vitex madiensis Oliv. (Lamiaceae) Locally Used in Congolese Villages
Laboratory of Biochemistry and Pharmacology, Faculty of Health Sciences, Marien Ngouabi University, Brazzaville, Congo
,
Laboratory of Biochemistry and Pharmacology, Faculty of Health Sciences, Marien Ngouabi University, Brazzaville, Congo
,
Laboratory of Animal Physiology and Experimental Physiopathology, Faculty of Sciences and Technologies, Marien Ngouabi University, Brazzaville, Congo
,
Center for Study and Research of African Physicians, Brazzaville, Congo
1 Laboratory of Biochemistry and Pharmacology, Faculty of Health Sciences, Marien Ngouabi University, Brazzaville, Congo
2 Laboratory of Biochemistry and Pharmacology, Faculty of Health Sciences, Marien Ngouabi University, Brazzaville, Congo
3 Laboratory of Animal Physiology and Experimental Physiopathology, Faculty of Sciences and Technologies, Marien Ngouabi University, Brazzaville, Congo
4 Center for Study and Research of African Physicians, Brazzaville, Congo
The present study aimed to contribute to the valorization of Congolese medicinal drugs and food plants. This study shows that the aqueous extract of Tikoni tea (200 and 400 mg/kg) significantly reduces motor activity and increases the duration of barbiturate-induced sleep in mice compared to diazepam (10 mg/kg). However, diazepam decreased time to sleep onset, whereas the extract increased it. The extract therefore has no hypnotic effect; the increase in latency time could be a stimulating effect. This study also revealed that this tea extract possesses free radical scavenging properties with an IC50 of 8.54 mg/mL, which are thought to be linked to the presence of secondary metabolites in this plant.
Ntandou, G.F., N’Goka, V., N’Goka, V., Boumba, S.L. and Abena, A.A. (2018) Chemical Screening, Acute Toxicity and Analgesic Effect of the Aqueous Extracts of Vitex madiensis Oliv. (Lamiaceae-Viticoïdeae) and Phytolacca d odecandra L’Hérit. (Phytolaccaceae) Leaves. International Journal of Sciences , 4, 1-9. https://doi.org/10.18483/ijsci.1261
Codoñer-Franch, P., Valls-Bellés, V., Arilla-Codoñer, A. and Alonso-Iglesias, E. (2011) Oxidant Mechanisms in Childhood Obesity: The Link between Inflammation and Oxidative Stress. Translational Research , 158, 369-384. https://doi.org/10.1016/j.trsl.2011.08.004
Rashid, K., Sinha, K. and Sil, P.C. (2013) An Update on Oxidative Stress-Mediated Organ Pathophysiology. Food and Chemical Toxicology , 62, 584-600. https://doi.org/10.1016/j.fct.2013.09.026
Kulawik, P., Özogul, F., Glew, R. and Özogul, Y. (2013) Significance of Antioxidants for Seafood Safety and Human Health. Journal of Agricultural and Food Chemistry , 61, 475-491. https://doi.org/10.1021/jf304266s
Ganapaty, S. and Vidyadhar, K.N. (2002) Phytoconstituants et activités biologiques de Vitex: Une revue. Journal of Natural Remedies , 5, 75-95.
Yao, J., Fang, S., Liu, R., Oppong, M., Liu, E., Fan, G., et al . (2016) A Review on the Terpenes from Genus Vitex. Molecules , 21, Article 1179. https://doi.org/10.3390/molecules21091179
Bouquet, A. (1969) Féticheurs et médecines traditionnelles du Congo (Brazzaville). Office de la Recherche Scientifique et Technique Outre-Mer (ORSTOM), 283 p.
Ngbolua, K. (2020) Microscopic Studies, Mineral Composition and Bioactivity of Vitex madiensis Oliv. (Lamiaceae). Discovery Phytomedicine , 7, 177-185. https://doi.org/10.15562/phytomedicine.2020.149
Ondo, J.P., Lekana-Douki, J.B., Bongui, J.B., Zang Edou, E.S., Zatra, R., Toure-Ndouo, F.S., et al . (2011) In Vitro Antiplasmodial Activity and Cytotoxicity of Extracts and Fractions of Vitex madiensis , Medicinal Plant of Gabon. Tropical Medicine & International Health , 17, 316-321. https://doi.org/10.1111/j.1365-3156.2011.02922.x
Zimmermann, M. (1983) Ethical Guidelines for Investigations of Experimental Pain in Conscious Animals. Pain , 16, 109-110. https://doi.org/10.1016/0304-3959(83)90201-4
Boumba, L.S., Nsonde Ntandou, G.F., Loufoua, A.B., Makambila, M.C. and Abena, A.A. (2018) Toxicité aiguë, effets anti-inflammatoire et analgésique de l’extrait aqueux de Heinsia crinita (Afzel.) G. Taylor (Rubiaceae). Phytothérapie , 16, S8-S16. https://doi.org/10.3166/phyto-2019-0155
Boungou-Tsona, G., Gainche, M., Decombat, C., Ripoche, I., Bikindou, K., Delort, L., et al . (2023) Chemical Profile, Antioxidant and Anti-Inflammatory Potency of Extracts of Vitex madiensis Oliv. and Crossopteryx febrifuga (Afzel ex G. Don). Plants , 12, Article 386. https://doi.org/10.3390/plants12020386
Auniq, R.B.J., Chy, M.N.U., Adnan, M., Chowdhury, M.R., Dutta, T., Ibban, S.S., et al . (2020) Evaluation of Anxiolytic, Sedative, and Antioxidant Activities of Vitex peduncularis Wall. Leaves and Investigation of Possible Lead Compounds through Molecular Docking Study. Advances in Traditional Medicine , 21, 507-518. https://doi.org/10.1007/s13596-020-00461-7
Nkundineza, J.C., Nsonde Ntandou, G.F., Bassoueka, D.A.J., Boumba, L.S., Makambila, M.C. and Abena, A.A. (2020) Anticonvulsant and Sedative Effects of Cassia alata (Fabaceae) in Mice. Galore International Journal of Health Sciences and Research , 5, 28-37.
Brand, W., Cuvelier, M.E. and Berset, C. (1995) Utilisation de la méthode des radicaux libres pour évaluer l’activit é antioxydante. Lebensmittel Wissenschaft and Tecnolo gie , 28, 25-30.
Fontaine, E., Barnoud, D., Schwebel, C. and Leverve, X. (2002) Place des anti-oxydants dans la nutrition du patient septiqueAntioxidants in critically ill patients. R éanimation , 11, 411-420. https://doi.org/10.1016/s1624-0693(02)00269-4
Husebye, E.E., Lyberg, T. and Røise, O. (2006) Bone Marrow Fat in the Circulation: Clinical Entities and Pathophysiological Mechanisms. Injury , 37, S8-S18. https://doi.org/10.1016/j.injury.2006.08.036
Bene, K., Camara, D., Kanga, Y. and Zirihi, G.N. (2018) Potentiel antiradicalaire des extraits de feuilles de Bersama abyssinica Fresen. (Melianthaceae). International Journal of Biological and Chemical Sciences , 11, 2962-2970. https://doi.org/10.4314/ijbcs.v11i6.32
Naziha, A., Samira, F., Fatma, H., Abir, Z. and Kalthoum, M. (2020) Evaluation comparative de l’activité anti-oxydante des extraits éthanoliques des feuilles de Olea europaea L. de l’Est Algérien. Journal de la F aculté de M édecine d ’ Oran , 2, 579-586.
Potterat, O. (1997) Antioxidants and Free Radical Scavengers of Natural Origin. Current Organic Chemistry , 1, 415-440. https://doi.org/10.2174/1385272801666220126162734
Sies, H. (1997) Oxidative Stress: Oxidants and Antioxidants. Experimental Physiology , 82, 291-295. https://doi.org/10.1113/expphysiol.1997.sp004024
Sarr, S., Fall, A., Gueye, R., Diop, A., Diatta, K., Diop, N., et al . (2015) Etude de l’activité antioxydante des extraits des feuilles de Vitex doniana (Verbenacea). Internat ional Journal of Biological and Chemical Sciences , 9, 1263-1269. https://doi.org/10.4314/ijbcs.v9i3.11
Marder, M. (2012) Flavonoids as GABAA Receptor Ligands: The Whole Story? Journ al of Experimental Pharmacology , 2012, 9-24. https://doi.org/10.2147/jep.s23105
Madhura, M., Amrita, B., Meenal, R. and Kausani, L. (2016) Herbal CNS Stimulants. International Journal of Herbal Medicine , 4, 109-116.