Evaluation of the Effect of Kigelia africana Seed Oil on the Antioxidant Status of Cisplatin Treated Wistar Rats
Keywords:
Antioxidant, oil, kigelia africana, Seed, malondialdehydeAbstract
Cisplatin is a well-known chemotherapeutic agent that has been successfully used to treat cancer of the lung, neck, bladder, ovary, and testicle. This medication though an important chemotherapeutic agent, has the potential to induce oxidative stress. The aim of this study was to evaluate the effect of Kigelia africana seed oil (KASO) on the antioxidant status and lipid profile of Wistar rats Administered to cisplatin. A total of 48 adult male albino rats were divided into six groups of 8 rats each. Group I (normal control) was fed only rat chow. Groups II–VI were administered 7 mg/kg of cisplatin. Groups III-V were administered 0.5, 1, 1.5 ml/kg of KASO, and group VI was administered 0.5 ml/kg of omega-3 oil. Oil administration lasted for 21 days, after which blood samples were drawn from the animals by cardiac puncture. Biochemical parameters were determined using standard procedures. The results obtained from this study showed that cisplatin markedly lowered antioxidant (superoxide dismutase (SOD), catalase (CAT), and glutathione reductase (GSR)) and raised malondialdehyde (MDA). However, a contrary observation was made following the administration of KASO. In conclusion, it can be deduced that Kigelia africana seed oil can mitigate cisplatin induced oxidative stress by enhancing antioxidant enzyme activities and reducing lipid peroxidation. Thus, may be ideal for use as an adjuvant to ameliorate chemotherapy-induced oxidative stress.
Downloads
References
Abdu, A., Lawal, U. and Ibrahim, M.A. (2023). Antioxidant and hepatoprotective potentials of methanol root extract of Kigelia africana in Wistar rats. Journal of Applied Life Science International, 26(2): 10–18.
Abdu, A.M., Said, S.S. and Ahmad, A. (2023). Antioxidant and antibacterial potential of methanol root extract of Kigelia africana (Sausage tree). Sahel Journal of Life Sciences, 1(1): 212-220. Doi: https://doi.org/10.33003/sajols-2023-0101-023.
Aebi, H. (1983). Catalase in in-vitro methods. Enzymology, 105: 121-126.
Dasari, S and Tchounwou, P.B. (2014). Cisplatin in cancer therapy: molecular mechanisms of action. European Journal of Pharmacology, 740: 364–378. doi:10.1016/j. ejphar.2014.07.025.
Desoize, B and Madoulet, C. (2002). Particular aspects of platinum compounds used at present in cancer treatment. Critical Reviews in Oncology Hematology, 42(3):317-25. DOI: 10.1016/s1040-8428(01)00219-0.
Halliwell, B. and Gutteridge, J.M.C. (2015). Free radicals in biology and medicine, 5th edition. Oxford University Press, Oxford, UK. p. 1–905.
Janero, D.R. (1990). Malondialdehyde and thiobarbituric acid-reactivity as diagnostic indices of lipid peroxidation and peroxidative tissue injury. Free Radical Biology and Medicine, 9:515-540. doi:10.1016/0891-5849(90)90131-2.
Jones-Bolin, S. (2012). Guidelines for the care of and use of laboratory animals in biomedical research. Current Protocol Pharmacology, 59(1): 4-9. doi.org/10.1002/0471141755.pha04bs59
Jwad, J and Alkazem, A. (2019). Antioxidants types. International Journal of Life Sciences Research, 7(2): 1-3.
Kakkar, P., Das, B. and Viswanathan, P.N. (1984). A modified spectrophotometric assay of superoxide dismutase. Indian Journal of Biochemistry and Biophysics, 21: 130–132.
Katanić, S.J.S., Selaković, D. and Rosić, G. (2023). Oxidative damage as a fundament of systemic toxicities induced by cisplatin: The crucial limitation or potential therapeutic target? International Journal of Molecular Sciences, 24(19), 14574. https://doi.org/10.3390/ijms241914574
Nguyen, T., Nioi, P. and Pickett, C.B. (2009). The Nrf2–ARE signaling pathway and its activation by oxidative stress. Journal of Biological Chemistry, 284(20): 13291–13295.
Nijveldt, R.J., van Nood, E., van Hoorn, D.E.C., Boelens, P.G., van Norren, K., van Leeuwen, P.A.M. (2001) Flavonoids: a review of probable mechanisms of action and potential applications. The American journal of clinical nutrition, 74: 418-425.
Pandey, K.B. and Rizvi, S.I. (2009). Plant polyphenols as dietary antioxidants in human health and disease. Oxidative Medicine and Cellular Longevity, 2(5): 270–278.
Rashid, N.A., Halim, S.A.S.A., Teoh, S.L., Budin, S.B., Hussanx, F., Ridzuan, N.R.A., Jalil, N.A.A. (2021). The role of natural antioxidants in cisplatin-induced hepatotoxicity. Biomedicine & Pharmacotherapy, 144: 112328. https://doi.org/10.1016/j.biopha.2021.112328.
Rice-Evans, C.A., Miller, N.J. and Paganga, G. (1997). Antioxidant properties of phenolic compounds. Trends in Plant Science, 2(4): 152–159.
Saini, S., Kaur, H., Verma, B., Ripudaman, Singh, S. (2009). Kigelia africana (Lam.) Benth. An overview. Natural Product Radiance, 8(2): 190-197.
Thakur, R., Sharma, A., Verma, P. and Devi, A. (2023). A review on pharmaceutical emulsion. Asian Journal of Pharmaceutical Research and Development, 11(3): 138–143. https://doi.org/10.22270/ajprd.v11i3.1138.
Yen, H.C., Nien, C.Y., Majima, H.J., Lee, C.P., Chen, S.Y., Wei, J.S., See, L.C. (2003). Journal of Biochemical and Molecular Toxicology, 17: 39. Doi: https://doi.org/10.1002/jbt.10059.
Zhang, H., Davies, K.J.A. and Forman, H.J. (2019). Oxidative stress response and Nrf2 signaling in aging. Free Radical Biology and Medicine, 134: 696–707.
Additional Files
Published
Data Availability Statement
This does not apply to our study
Issue
Section
Categories
License
Copyright (c) 2026 Chukwudi Uguru, Christian E. Offor, Ekpono E. Ugbala, Aja P. Mmaduabuchi, Ikechuku O. Igwenyi, Fredrick O. Orinya, Anestesia E. Onya-Mmaghiri, Nwuruku O. Alfred, Onwe F. Ogba, Ewa Ogbonnaya, Ejiofor D. Chinedu, Agu K. Akachukwu (Author)

This work is licensed under a Creative Commons Attribution 4.0 International License.