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1. Akinyemi, A.J., Ademiluyi, A.O., & Oboh, G. (2013). Aqueous Extracts of Two Varieties of Ginger (Zingiber officinale) Inhibit Angiotensin I–Converting Enzyme, Iron(II),and Sodium Nitroprusside-Induced Lipid Peroxidation in the Rat Heart InVitro. Journal of Medicinal Food, 16, 641–646.10.1089/jmf.2012.0022 Search in Google Scholar

2. Alharby, H., Abdelati, T., Rizk, M., Youssef, E., Moghazy, K., Gaber, N., & Yafei S. (2019). Association of lipid peroxidation and interleukin-6 with carotid atherosclerosis in type 2 diabetes. Cardiovascular Endocrinology and Metabolism, 8(3), 73-76.10.1097/XCE.0000000000000175 Search in Google Scholar

3. Apostolidis, E., Kwon, Y.I., & Shetty, K. (2007). Inhibitory potential of herb, fruit, and fungal enriched cheese against key enzymes linked to type-2 diabetes and hypertension. Innovative Food Science and Emerging Technologies, 8, 46–54.10.1016/j.ifset.2006.06.001 Search in Google Scholar

4. Eke-ejiofor, J. (2015) Functional properties of starches, physico-chemical and rheological properties of glucose syrup made from cassava and different potato varieties. International Journal of Recent Scientific Research, 6(6) 4400-4406 Search in Google Scholar

5. Eleazu, C.O., Eleazu, K.C., & Iroaganachi, M. (2016). In vitro starch digestibility, α-amylase and α-glucosidase inhibitory capacities of raw and processed forms of three varieties of Livingstone potato (Plectranthus esculentus). Innovative Food Science and Emerging Technologies, 37, 37–4310.1016/j.ifset.2016.08.007 Search in Google Scholar

6. Garretson, L., Tyl, C., & Marti, A. (2018). Effect of Processing on Antioxidant Activity, Total Phenols, and Total Flavonoids of Pigmented Heirloom Beans Journal of Food Quality https://doi.org/10.1155/2018/783674510.1155/2018/7836745 Search in Google Scholar

7. Griesmacher, A., Kindhauser, M., Andert, S.E., Schreiner, W., Toma, C., Knoebi, P. et al., (1995). Enhanced serum level of thiobarbituric-acid reactive substances in diabetes mellitus. The American Journal of Medicine, 98(5), 469-475 Search in Google Scholar

8. Gyamfi, M., Yonamine, M., & Aniya, Y. (1999). Free radical scavenging action of medicinal herbs from Ghana: Thonningia sanguine on experimentally induced liver injuries. General Pharmacology, 32(6), 661-667.10.1016/S0306-3623(98)00238-9 Search in Google Scholar

9. Heidemann, C., Schulze, M.B., Franco, O.H., van Dam, R.M., Mantzoros, C.S., & Hu, F.B. (2008). Dietary patterns and risk of mortality from cardiovascular disease, cancer, and all causes in a prospective cohort of women. Circulation, 118, 230–237.10.1161/CIRCULATIONAHA.108.771881 Search in Google Scholar

10. Ikanone, C.E.O., & Oyekan, O.O. (2014). Effect of Boiling and Frying on the Total Carbohydrate, Vitamin C and Mineral Contents of Irish (Solanun tuberosum) and Sweet (Ipomea batatas) Potato Tubers. Nigerian Food Journal, 32(2) 33-39.10.1016/S0189-7241(15)30115-6 Search in Google Scholar

11. International Diabetes Federation (2019). The IDF Diabetes Atlas, Ninth Edition; Belguim Search in Google Scholar

12. Kabira, J.N., Imungi, J.K. (1991). Possibility of incorporating potato flour into the traditional Kenya foods. Afr Study Monographs, 12 (4), 211-217. Search in Google Scholar

13. Karigidi, K.O., Adetuyi, F.O., Akintimehin, E.S., Dada, I.O., & Olugotun, A.F. (2019). Effect of cooking methods on polyphenol, antioxidant and inhibition of key enzymes linked to carbohydrate metabolism of cocoyam (Colocasia esculenta L. schott). Annal. Food Science and Technology, 20(3), 543-552. Search in Google Scholar

14. Karigidi, K.O., & Olaiya, C.O. (2019). In vitro Antidiabetic, Antioxidant and Anti-lipid peroxidative Activities of Corn Steep Liquor Extracts of Curculigo pilosa and its Solvent Fractions. Journal of Herbs, Spices and Medicinal Plants, 25(4), 377-388.10.1080/10496475.2019.1635549 Search in Google Scholar

15. Kim, D.O., Jeong, S.W., & Lee, C.Y. (2003). Antioxidant capacity of phenolic phytochemicals from various cultivars of plums. Food Chemistry, 81, 321–326.10.1016/S0308-8146(02)00423-5 Search in Google Scholar

16. Kruczek, A., Ochmian I., Krupa-malkiewicz., & Lachowicz S. (2020). Comparison of morphological, antidiabetic and antioxidant properties of Goji fruits. Acta Universitatis Cibiniensis Series E: Food Technology 24(1),1-8.10.2478/aucft-2020-0001 Search in Google Scholar

17. Li, K. Yao, F. Xue, Q. et al., (2018). Inhibitory effects against α-glucosidase and α-amylase of the flavonoids-rich extract from Scutellaria baicalensis shoots and interpretation of structure–activity relationship of its eight flavonoids by a refined assign-score method. Chemistry Central Journal, 12, 82.10.1186/s13065-018-0445-y Search in Google Scholar

18. Lo-Scalzo, R,, Fibiani, M., Mennella, G., Rotino, G., Dal, S.M., Culici, M., & Braga, P. (2010). Thermal treatment of eggplant (Solanum melongena L.) increases the antioxidant content and the inhibitory effect on human neutrophil burst. Journal of Agriculture and Food Chemistry, 58(6), 3371-3379. Search in Google Scholar

19. Musilova, J., Lidikova, J., Vollmannova, A., Frankova, H., Urminska, D., Bojnanska, T., & Toth, T. (2020). Influence of Heat treatments on the content of bioactive substances and antioxidant properties of sweet potato (Ipomoea batatas L.) tubers. Journal of Food quality https://doi.org/10.1155/2020/885626010.1155/2020/8856260 Search in Google Scholar

20. National Research Council (US) (2011). Committee for the Update of the Guide for the Care and Use of Laboratory Animals. Guide for the Care and Use of Laboratory Animals. 8th edition. Washington DC: National Academies Press (US). Search in Google Scholar

21. Ohkawa, H., Ohishi, N., & Yagi, K. (1979). Assay for lipid peroxides in animal tissues by thiobarbituric acid reaction. Analytical Biochemistry, 95, 351–358.10.1016/0003-2697(79)90738-3 Search in Google Scholar

22. Olaiya, C. O., Soetan, K.O., & Karigidi K.O. (2018). Evaluation of In Vitro Antioxidant Capacities of Six Accessions of Winged Beans (Psophocarpus tetragonolobus). EC Nutrition 13(8), 589-595. Search in Google Scholar

23. Park, Y-S., Jung, S-T., Kang, S-G., Heo, B.K., Arancibia-Avila, P., Toledo, F. et al., (2008). Antioxidants and proteins in ethylene-treated kiwifruits. Food Chemistry, 107, 640–648.10.1016/j.foodchem.2007.08.070 Search in Google Scholar

24. Prieto, P., Pineda, M., & Aguilar, M. (1999). Spectrophotometric quantitation of antioxidant capacity through the formation of a phosphomolybdenum complex: specific application to the determination of vitamin E. Analytical Biochemistry, 26(9), 337-341.10.1006/abio.1999.4019 Search in Google Scholar

25. Rasouli, H., Hosseini-Ghazvini, S., Adibia, H., & Khodarahmi, R. (2017). Differential α-amylase/α-glucosidase inhibitory activities of plant-derived phenolic compounds: a virtual screening perspective for the treatment of obesity and diabetes. Food Function, 8, 1942-1954.10.1039/C7FO00220C Search in Google Scholar

26. Rutkowski M, & Grzegorczyk, K. (2007) Modifications of spectrophotometric methods for antioxidative vitamins determination convenient in analytic practice. Acta Scientarum. Polonorum., Technologia Aliment, 6(3), 17-28. Search in Google Scholar

27. Samsher, V., Singh, B.R., Chandra, S. et al., (2020). Development of potato flour based cookies and quality evaluation. The Pharma Innovation Journal, 9(9), 527-532. Search in Google Scholar

28. Shim, Y., Doo, H,, Ahn, S., Kim, Y.S., Seong, J.K., Park, I.S., & Min, B. (2003). Inhibitory Effect of Aqueous Extract from the Gall of Rhuz chinesis on Alpha-glucosidase Activities and Postprandial Blood Glucose. Journal of Ethnopharmacology, 85, 283–287.10.1016/S0378-8741(02)00370-7 Search in Google Scholar

29. Song, Y., Manson, J.E., Buring, J.E., Sesso, H.D., & Liu, S. (2005). Association of Dietary Flavonoids with Risk of Type 2 Diabetes, and Markers of Insulin Resistance and Systemic Inflammation in Women: A Prospective Study and Cross Sectional Analysis. Journal of the American College of Nutrition, 24(5), 376–384.10.1080/07315724.2005.1071948816192263 Search in Google Scholar

30. Tadera, K., Minami, Y., Takamatsu, K., & Matsuoka, T. (2006). Inhibition of alpha-glucosidase and alpha amylase by flavonoids. Journal of Nutritional Science and Vitaminology, 52, 149–153.10.3177/jnsv.52.14916802696 Search in Google Scholar

31. Tian, J., Chen, J., Lv, F., Chen, S., Chen, J., Liu, D., & Ye, X. (2016). Domestic cooking methods affect the phytochemical composition and antioxidant activity of purple-fleshed potatoes Food Chemistry, 197, 1264–1270.10.1016/j.foodchem.2015.11.04926675866 Search in Google Scholar

32. Wailare, A.M, & Madu, A.I. (2019). Yield variability of Irish potato (Solanum tuberosum L.) as affected by cultivars and sowing date in the Sudan Savanna Zone of Nigeria. Journal of Dryland Agriculture, 5(4), 33-41. Search in Google Scholar

33. Worthington, V., (1993). Alpha amylase. In: Worthington Enzyme Manual. Freehold: Worthington Biochemical Corp: 36-41. Search in Google Scholar

34. Wronkowska, M., Honke, J., Zieliński, H., & Wiczkowski, W. (2020). Biscuits from Fermented Roasted Buckwheat Flour - Phenolics Profile and Bioaccessible Angiotensin Converting Enzyme Inhibitory Activity. Acta Universitatis Cibiniensis Series E: Food Technology 24(2), 205-21410.2478/aucft-2020-0019 Search in Google Scholar

35. Zhu. J., Chen, C., Zhang, B., & Huang, Q. (2020). The inhibitory effects of flavonoids on α-amylase and α-glucosidase. Critical Reviews in Food Science and Nutrition, 60(4) 695–708.10.1080/10408398.2018.154842830638035 Search in Google Scholar

eISSN:
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Langue:
Anglais
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Sujets de la revue:
Industrial Chemistry, other, Food Science and Technology