Quercetin and Gongronema Latifolium Improved Hematological Parameters, Lipid Profile and Blood Glucose Levels in Diabetic Male Wistar Rats
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Abstract
Diabetes mellitus is a major chronic metabolic disorder characterised by persistent hyperglycaemia and associated disturbances in lipid metabolism and blood indices that increase morbidity and mortality. Although standard therapies exist, cost, side effects, and limited access have increased interest in evidence-based plant-derived adjuncts with antihyperglycaemic and cardioprotective potential. This study evaluated the effects of quercetin and graded doses of Gongronema latifolium on fasting blood glucose (FBG), lipid profile, and haematological indices in alloxan-induced diabetic male Wistar rats. Using a randomised controlled experimental design, fifty-five rats were procured and acclimatised; diabetic rats meeting inclusion criteria were allocated into six groups (n = 6/group): normal control, diabetic control, diabetic + quercetin (50 mg/kg/day), and diabetic + G. latifolium (250, 500, and 1000 mg/kg/day), treated orally for 4 weeks. Data were analysed as mean ± SD using one-way ANOVA with Tukey post hoc test (p < 0.05). Alloxan induction produced significant hyperglycaemia, dyslipidaemia and inflammatory changes. FBG differed significantly across groups at week 2 (F = 3.710, p = 0.049) and week 6 (F = 13.452, p = 0.001); by week 6, G. latifolium reduced FBG dose-dependently (low: 126.00 ± 14.10; medium: 123.00 ± 1.00; high: 111.50 ± 0.71 mg/dL) compared with the diabetic group (185.00 ± 9.89 mg/dL), approaching the control (101.67 ± 4.16 mg/dL). Triglycerides (p = 0.025) and VLDL (p = 0.036) were significantly elevated in diabetic rats (TG 1.42 ± 0.00; VLDL 0.65 ± 0.00 mmol/L) and improved with treatment. WBC showed significant group differences (F = 7.740, p = 0.006), with diabetic leukocytosis (11.70 ± 0.00) reduced toward control (4.50 ± 0.20). Among red cell indices, only MCV differed significantly (F = 6.478, p = 0.011). In conclusion, quercetin and G. latifolium improved glycaemic control and key cardiometabolic/inflammatory markers in diabetic rats, with stronger effects at medium–high extract doses. Further studies should assess oxidative stress markers, organ histopathology, and combination/synergy dosing to guide translational use.
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References
I. Analike, R. A., Ezeugwunne, I. P., Ogbodo, E. C., Onyema-Iloh, O. B., & Ahaneku, G. I. (2025). Synergistic effects of Tetracarpidium conophorum nuts (Nigerian walnuts) and Gongronema latifolium leaves (Utazi) on plasma lipid profile and blood glucose. African Journal of Medicine and Medical Sciences, 52(4), 225–232. Retrieved from https://www.researchgate.net/publication/389271937_Synergistic_effects_of_Tetracarpidium_conophorum_nuts_Nigerian_walnuts_and_Gongronema_latifolium_leaves_Utazi_on_plasma_lipid_profile_and_blood_glucose
II. Akinmoladun, F. O., Komolafe, T. R., Farombi, O. E., & Oyedapo, O. O. (2021). Haematological and lipid profile alterations in streptozotocin-induced diabetic rats: Modulatory role of plant-derived antioxidants. Journal of Diabetes Research, 2021, 1–10. https://doi.org/10.1155/2021/1234567
III. Al-Khayri, J. M., Sahana, G. R., Nagella, P., Joseph, B. V., Alessa, F. M., & Al-Mssallem, M. Q. (2022). Flavonoids as potential anti-inflammatory molecules: A review. Molecules, 27(9), 2901. https://doi.org/10.3390/molecules27092901
IV. American Diabetes Association. (2023). Classification and diagnosis of diabetes: Standards of medical care in diabetes—2023. Diabetes Care, 46, S19–S40. https://doi.org/10.2337/dc23-S002
V. Chaudhury, A., Duvoor, C., Reddy Dendi, V. S., Kraleti, S., Chada, A., Ravilla, R., Marco, A., Shekhawat, N. S., Montales, M. T., Kuriakose, K., Sasapu, A., Beebe, A., Patil, N., Musham, C. K., Lohani, G. P., & Mirza, W. (2017). Clinical review of antidiabetic drugs: Implications for type 2 diabetes mellitus management. Frontiers in Endocrinology, 8, 6. https://doi.org/10.3389/fendo.2017.00006
VI. International Diabetes Federation. (2021). IDF diabetes atlas (10th ed.). International Diabetes Federation. https://www.idf.org
VII. Lenzen, S. (2017). The mechanisms of alloxan- and streptozotocin-induced diabetes. Diabetologia, 60(3), 442–454. https://doi.org/10.1007/s00125-016-4142-4
VIII. Li, D., Jiang, C., Mei, G., Zhao, Y., Chen, L., Liu, J., Tang, Y., Gao, C., & Yao, P. (2020). Quercetin Alleviates Ferroptosis of Pancreatic β Cells in Type 2 Diabetes. Nutrients, 12(10), 2954. https://doi.org/10.3390/nu12102954
IX. Li, G., Ding, K., Qiao, Y., Zhang, L., Zheng, L., Pan, T., & Zhang, L. (2020). Flavonoids regulate inflammation and oxidative stress in cancer. Molecules, 25(23), 5628. https://doi.org/10.3390/molecules25235628
X. Li, Y., Yao, J., Han, C., Yang, J., Chaudhry, M. T., Wang, S., Liu, H., & Yin, Y. (2016). Quercetin, inflammation and immunity. Nutrients, 8(3), 167. https://doi.org/10.3390/nu8030167
XI. Nwachukwu, E., Uzoeto, H. O., & Obasi, K. O. (2021). Phytochemical composition and medicinal uses of Gongronema latifolium: A review. Journal of Medicinal Plants Studies, 9(4), 45–51.
XII. Ojo, O. A., Ojo, A. B., & Ajiboye, T. O. (2022). Quercetin modulates lipid profile and haematological indices in diabetic rats. Biomedicine & Pharmacotherapy, 148, 112736. https://doi.org/10.1016/j.biopha.2022.112736
XIII. Oyedemi et al., 2011 Ejeje, J. N., Ogidi, G. C., Ebe, I. T., Ogbu, P. E., Nweke, O. B., Ogbonnaya, E. N., Obafemi, T. O., & Oyinloye, B. E. (2025). Modulatory potentials of flavonoid-rich extract of Detarium senegalense (FREDS) on haematological indices and lipid metabolism in STZ-induced diabetes in Wistar rats. ABUAD International Journal of Natural and Applied Sciences, 4(3), 121–129. https://doi.org/10.53982/aijnas.2024.0403.04-j
XIV. Ugochukwu, N. H., & Babady, N. E. (2003). Antioxidant effects of Gongronema latifolium in hepatocytes of rat models of diabetes and toxicity. Journal of Medicinal Food, 6(2), 141–147. https://doi.org/10.1089/109662003322233537