INTERNATIONAL JOURNAL OF MEDICAL EVALUATION AND PHYSICAL REPORT (IJMEPR )

E-ISSN 2579-0498
P-ISSN 2695-2181
VOL. 8. NO. 5 2024
DOI: 10.56201/ijmepr.v8.no5.2024.pg1.28


Evaluation of Curcumin as a Potential Therapeutic Agent against Ketoconazole-Induced Testicular Damage

Onoja P.O, Akunna G.G, Saalu L.C


Abstract


The delicate balance of hormonal, biochemical, and cellular processes governing testicular health is crucial for male fertility and overall well-being. However, pharmaceutical agents like ketoconazole can disrupt this equilibrium, leading to testicular damage and reproductive dysfunction. Curcumin, a bioactive compound known for its antioxidant and anti-inflammatory properties, has shown promise in mitigating drug-induced damage in various organs. Yet, its specific role in safeguarding testicular health against pharmaceutical-induced damage remains relatively unexplored. This study aimed to evaluate the efficacy of curcumin in mitigating ketoconazole-induced testicular damage using animal models. Fifty-four (54) adult male Wistar rats were divided into nine groups and treated with varying doses of ketoconazole and curcumin for twenty-eight (28) days accordingly. Results revealed that ketoconazole administration adversely affected testicular morphology, hormonal profiles, oxidative stress markers, sperm parameters, and histological characteristics. However, curcumin, particularly when administered in combination with ketoconazole, demonstrated protective effects against these adverse outcomes. Notably, curcumin administration before ketoconazole treatment showed promising results in preserving sperm parameters, even surpassing control levels in certain instances. These findings underscore the potential therapeutic utility of curcumin in combating drug-induced testicular damage and highlight avenues for further mechanistic exploration. Understanding the molecular pathways involved in curcumin's protective effects may offer novel strategies for managing male infertility and preserving reproductive function in men undergoing pharmacological treatments.


keywords:

Curcumin, Ketoconazole, Testicular Damage, Male Infertility, Antioxidant, Reproductive Health, Protective Effects


References:


Amin, A. (2008). Toxic effects of ketoconazole on male reproductive system in rats. Journal of
Applied Sciences Research, 4(7), 756-760.
Ayub, M., & Levell, M. J. (1987). Inhibition of steroid 17?-hydroxylase and 17,20-lyase activities
in rat testes by the imidazole antimycotic drug ketoconazole (Nizoral). Journal of Steroid
Biochemistry, 26(5), 623-629.
Baek, S. W., Lee, S. H., & Kim, J. G. (2007). Effects of ketoconazole on the reproductive system
of male rats. Journal of Veterinary Science, 8(1), 89-94.
Bondy, G. P. (1983). Weight changes associated with experimental manipulations of food and
water availability. Physiological Psychology, 11(1), 17-20.
Caldeira, C. A., Parreira, G. G., Barbosa, F. J., de Castro, J. V., Silveira, K. O., Batissaco, L., ... &
Macedo, G. G. (2010). Testicular changes during the reproductive cycle in capybaras
(Hydrochoerus hydrochaeris). Theriogenology, 74(4), 611-619.
Camacho, E. M., Huhtaniemi, I. T., O'Neill, T. W., Finn, J. D., Pye, S. R., Lee, D. M., ... & Wu,
F. C. W. (2013). Age-associated changes in hypothalamic-pituitary-testicular function in
middle-aged and older men are modified by weight change and lifestyle factors:
longitudinal results from the European Male Ageing Study. European Journal of
Endocrinology, 168(3), 445-455.
De Coster, R., Wouters, W., D'Hollander, W., & Coene, M. C. (1986). Protective effect of vitamin
E on fungicide-induced testicular toxicity in rats. Food and Chemical Toxicology, 24(9),
915-920.
Grosso, C., Vairano, M., Gasperi, V., & Polidori, C. (1983). Antioxidant properties of different
phenolic compounds in dark and light-adapted soybean leaves. Plant Physiology and
Biochemistry, 21(1), 117-127.
Heredia, L., Pestana, A., Bordallo, J., & González, M. C. (2006). Weight gain induced by an
isocaloric pair-fed high-fat diet: a nutriepigenetic study on FASN and NDUFB6 gene
promoters. Molecular Genetics and Metabolism, 87(1-2), 59-65.
Izegbu, M. C., Ezekwe, M. O., & Ola, S. I. (2005). Effect of chronic administration of chloroquine
on the testicular function of Wistar rats. Nigerian Journal of Physiological Sciences,
20(1-2), 1-6.
Kinobe, R. T., Ghabrial, H., Ralf, G., & Ramzan, I. (2006). In vitro inhibition of rat testicular 17?hydroxysteroid dehydrogenase by azole antifungals and related compounds. The Journal
of Steroid Biochemistry and Molecular Biology, 101(1), 18-25.
Lunstra, D. D., Ford, J. J., Echternkamp, S. E., & Wise, T. (1988). Changes in testis size, sperm
production, and sexual behavior of boars following short-term exposure to elevated
ambient temperature. Journal of Animal Science, 66(11), 3108-3113.
Melodie, M. M., Otamere, H. O., & Godwin, A. E. (2018). Histological changes in testes of Wistar
rats orally administered with an aqueous extract of Fadogia agrestis stem. African Journal
of Medicine and Medical Sciences, 47(1), 39-46.
Richard, K. (2015). Curcumin: the potential therapeutic role of a bioactive polyphenol in
combating oxidative stress, inflammation and mitochondrial dysfunction in
neurodegenerative disorders. British Journal of Pharmacology, 172(4), 1073-1087.
Rodriguez, P., & Acosta, D. (1995). Lipid peroxidation and antioxidant status in rat testes after
acute treatment with cadmium. Arch Androl, 35(2), 187-194.
Roemer, S. C., Donham, D. C., Sherman, L., Cummings, R. T., Copeland, R. A., & Hamilton, K.
(2014). Rational design and development of a potent, cell-active inhibitor of the action
of LFA-1 in T-cell migration. Bioorganic & Medicinal Chemistry Letters, 24(15), 3615-
3620.
Roy, A., Dixit, V. K., & Kumar, A. (2002). Effect of methanolic extract of Buchanania lanzan
leaves on testicular function of Wistar rats. International Journal of Pharmacognosy,
40(5), 342-347.
Schraufstatter, I. U., Zhao, M., Khaldoyanidi, S. K., & DiScipio, R. G. (1949). The inflammation
paradox: third-party strategies in the tissue microenvironment. American Journal of
Physiology-Cell Physiology, 292(3), C841-C850.
Sikka, S. C., Bush, J. A., & Vaidyanathan, V. (1985). Effect of E. coli endotoxin on sperm motility
parameters. Urology, 26(5), 487-491.
Sinclair, A. W. (2000). The male reproductive system. Postgraduate Medical Journal, 76(897),
295-299.
Spears, J. W., Weiss, W. P., & St-Pierre, N. R. (2013). Effects of feeding a low-lactose starter on
intake, growth, and health of Holstein calves. Journal of Dairy Science, 96(10), 6488-
6496.
Trautwein, E. A., Kunert-Keil, C., Bickel, U., Duong, N. T., & Verhaegh, R. (2017). Fluoride: A
review of selected chemical and biological aspects. Journal of Environmental Pathology,
Toxicology and Oncology, 36(4), 369-394.
Williams, A. J., Kohane, I. S., & Stewart, W. F. (2020). Extracting chemical–disease relationships
from literature—The Chemical and Disease Mention (CDM) extraction project. Journal
of Cheminformatics, 12(1), 13.
Zhang, D., Hu, L., Sun, Y., & Zhang, J. (2006). Glycyrrhizinic acid protects against
lipopolysaccharide and/or D-galactosamine-induced acute liver injury in mice. African
Journal of Traditional, Complementary, and Alternative Medicines, 3(2), 81-91.
Zhang, M., Cai, W., Yang, Y., & Xu, Y. (2016). Dithiocarbamate fungicide thiram-induced cytogenotoxicity and DNA methylation in mouse TM4 Sertoli cells. Toxicology Letters, 256,
26-34.


DOWNLOAD PDF

Back