Anti-nutritional studies on cowpea ( Vigna ungiculata L.) seeds as whole cowpea flour (WCF), dehulled cowpea flour (DCF), dehulled defatted cowpea flour (DDCF) and protein isolates obtained from DDCF by isoelectric (CPIA) and micellization (CPIB) precipitation. The protein content of WCF and DDCF were 22.3% and 26.75% respectively, while CPIA and CPIB showed 75% and 76% respectively. The abundant minerals in WCF and DCF were calcium (32.38 - 33.61 mg/100 g); potassium (29.25 - 24.99 mg/100 g); and sodium (1.76 - 1.00 mg/100 g). The least abundant minerals were iron (0.004 - 0.013 mg/100 g); copper (0.04 - 0.25 mg/100 g); manganese (0.18 - 0.30 mg/100 g) and zinc (0.26 - 1.22 mg/100 g); respectively. Trypsin inhibitor activity for WCF, CPIA and CPIB was found 16,640 TIU/g, 4293 TIU/g and 4290 TIU/g respectively. Condensed tannins in RCF and DDCF were found 0.003% and 0.004% respectively while phytic acid content 0.8% and 1.17% respectively, no phytic acid and tannins were observed in protein isolates. Cowpea flour was also similar to other edible grain legumes in content of anti-nutritional factors; appropriate processing methods improved cowpea nutritive value and significantly reduced the levels of anti-nutritional factors.
Rochfort, S. and Panozzo, J. (2007). Phytochemicals for Health, the Role of Pulses. Journal of Agricultural and Food Chemistry, 55, 7981-7994. http://dx.doi.org/10.1021/jf071704w
Granito, M., Torres, A., Frías, J., Guerra, M. and Vidal-Valverde, C. (2005) Influence of Fermentation on the Nutritional Value of Two Varieties of Vigna sinensis. European Food Research and Technology, 220, 176-181. http://dx.doi.org/10.1007/s00217-004-1011-5
Guillion, F. and Champ, M. (1966) Grain Legumes and Transit in Humans. Grain Legumes AEP, 11, 18-21.
Sirtorti, C.R. and Lovati, M.R. (2001) Soy Proteins and Cardiovascular Disease. Current Atherosclerosis Reports, 3, 47-53. http://dx.doi.org/10.1007/s11883-001-0010-2
Prinyawiwatkul, W., McWatters, K.H., Beuchat, L.R. and Phillips, R.D. (1996) Cowpea Flour: A Potential Ingredient in Food Products. Critical Reviews in Food Science and Nutrition, 36, 413-429. http://dx.doi.org/10.1080/10408399609527734
Frias, J., Diaz-Pollan, C., Hedley, C.L. and Vidal-Valverde, C. (1995) Evolution of Trypsin Inhibitor Activity during Germination of Lentils. Journal Agriculture Food chemistry, 43, 2231-2234. http://dx.doi.org/10.1021/jf00056a049
Kozlowska, H., Honke, J., Sadowska, J., Frias, J. and Vidal-Valverde, C. (1996) Natural Fermentation of Lentils: Influence of Time, Concentration and Temperature on the Kinetics of Hydrolysis of Inositol Phosphates. Journal Science Food Agriculture, 71, 367-375. http://dx.doi.org/10.1002/(SICI)1097-0010(199607)71:3 3.0.CO;2-I
Thompson, L.U. (1977) Preparation and Evaluation of Mung Bean Protein Isolates. Journal Food Science, 42, 202-206. http://dx.doi.org/10.1111/j.1365-2621.1977.tb01252.x
McCurdy, S. and Kniptel, J. (1990) Investigation of Faba Bean Protein Recovery and Application to Pilot Scale Processing. Journal Food Science, 55, 10931094. http://dx.doi.org/10.1111/j.1365-2621.1990.tb01606.x
Ferndez-Quintela, Q.A., Macarulla, M.T., Del Barrio, A.S. and Martinez. J.A. (1997) Composition and Functional Properties of Protein Isolates Obtained from Commercial Legumes Grown in Northern Spain. Plant Food Human Nutrition, 51, 331-342. http://dx.doi.org/10.1023/A:1007936930354
Lampart-Szczapa, E. (1996) Preparation of Protein from Lupin Seeds. Nahrung, 40, 71-74. http://dx.doi.org/10.1002/food.19960400205
Association of Official Analytical Chemists (1998) Official Method of Analysis. 16th Edition, AOAC, Washington DC.
Price, M.L. and Bulter, L.G. (1978) Critical Evaluation of the Vanillin Reaction as an Assay for Tannin in Sorghum Grain. Journal Agriculture Food Chemistry, 26, 1214-1218. http://dx.doi.org/10.1021/jf60219a031
Mohamed, A.I., Perera, P.A.J. and Hafez, Y.S. (1986) New Chromophone for Phytic Acid Determination. Cereal Chemistry, 63, 475-478.
Hamerstrand, G.E., Black, L.T. and Glover, J.D. (1980) Trypsin Inhibitors in Soy Products: Modification of the Standard Analytical Procedure. Cereal Chemistry, 58, 42-45.
Kakade, M.L. (1969) Unavailability of Cystine from Trypsin Inhibitors as a Factor Contributing to the Poor Nutritive Value of Navy Beans. Journal of Nutrition, 99, 34-42.
Liyanage, R., Perere, O.S., Weththasinghe, P., Jayawardana, B.C., Vidanaarach, J.K. and Sivakanesan, R. (2014) Nutritional Cowpea Cultivars in Sri Lanka. Journal of Food Legumes, 27, 215-217.
Muzquiz, M., Burbano, C., Rey, C. and Cassinello, M. (1989) A Chemical Study of Lupinus hispanicus Seed Nutritional Components. Journal of Science of Food and Agriculture, 17, 197-204. http://dx.doi.org/10.1002/jsfa.2740470207
Dagnia, S.G., Petterson, D.S., Bell, R.R. and Flanagan, F.V. (1992) Germination Alters the Chemical Composition and Protein Quality of Lupin Seeds. Journal of Science of Food and Agriculture, 60, 419-423. http://dx.doi.org/10.1002/jsfa.2740600403
Todorov, N.A., Pavolov, D.C. and Kostov, K.D. (1996) Lupinus spp. Legumes and Oil Seeds in Nutrition. Chapman and Hall, London.
Osborn, T.W. (1977) Element Composition of Soy Bean Meal and Inter Laboratory Performance. Journal of Agriculture Food Chemistry, 25, 229-232. http://dx.doi.org/10.1021/jf60210a028
Aletor, V.A. and Aladetimi, O.O. (1989) Compositional Evaluation of Some Cowpea Varieties and Some Under-Utilized Edible Legumes in Nigeria. Die Nahrung, 33, 99-107. http://dx.doi.org/10.1002/food.19890331023
Olaofe, O., Umar, Y.O. and Adediran, G.O. (1993) The Effect of Nematicides on the Nutritive Value and Functional Properties of Cowpea Seeds. Food Chemistry, 46, 337-342. http://dx.doi.org/10.1016/0308-8146(93)90001-V
Oke, D.B., Tew, O.O. and Fetuga, B.L. (1985) The Nutritional Composition of Some Cowpea Varieties. Nigerian Journal of Animal Production, 22, 32-36.
Padilla, F.C., Alvaerez, M.T. and Alfaro, M.J. (1996) Functional Properties of Barinas Nut Flour Compared to Those of Soy Bean. Food Chemistry, 57, 191-196. http://dx.doi.org/10.1016/0308-8146(95)00108-5
Aremue, O.M., Olorunfemi, O. and Akintayo, T.E. (2006) Compositional Evaluation of Cowpea (Vigna ungiculata) and Scarlet Runner Bean (Phaseolous coccineus) Varieties in Nigeria. Journal of Food, Agriculture and Environment, 4, 39-43.
Mamiro, P.S., Mbwaga, A.M., Mamiro, D.P., Wand, M.A. and kinabo, J.L. (2011) Nutritional Quality and Utilization of Local and Improved Cowpea Varieties in Some Regions in Tanzania. African Journal of Food, Agriculture, Nutrition and Development, 11, 4490-4505. http://dx.doi.org/10.4314/ajfand.v11i1.65876
Liyanage, R., Perere, O.S., Weththasinghe, P., Jayawardana, B.C., Vidanaarach, J.K. and Sivakanesan, R. (2014) Nutritional Properties and Antioxidant Content of Commonly Consumed Cowpea Cultivars in Sri Lanka. Journal of Food Legumes, 27, 215-217.
Subramanian, V., Bulter, L.G., Jambunathan, R. and Prasada-Rao, K.E. (1983) Some Agronomic and Biochemical Characters of Brown Sorghum and Other Possible Role in Bird Resistance. Journal of Agriculture and Food Chemistry, 31, 1303-1307. http://dx.doi.org/10.1021/jf00120a039
Kumar, N.R., Ready, A.N. and Rao, K.N. (1979) Levels of Phenolic Substance on the Leachionted in Cicezo Seed. Journal of Experimental Biology, 17, 114-116.
Balail, N.G. (2014) Effect of De Cortication and Roasting on Trypsin Inhibitors and Tannin Contents of Cowpea (Vigna unguiculata L. Walp) Seeds. Pakistan Journal of Biological Sciences, 17, 864-867. http://dx.doi.org/10.3923/pjbs.2014.864.867
Udensi, E.A., Ekwu, F.C. and Isinguzo, J.N. (2007) Antinutritional Factors of Vegetable Cowpea (Sesquipedalis) Seeds during Thermal Processing. Pakistan Journal of Nutrition, 6, 194-197. http://dx.doi.org/10.3923/pjn.2007.194.197
Wang, P.X. and Ueberschar, K.H. (1990) The Estimation of Vicine, Convicine and Condensed Tannins in 22 Varieties of Faba Bean (Vicia faba L.). Animal Feed Science and Technology, 31, 157-165. http://dx.doi.org/10.1016/0377-8401(90)90121-N
Cabrera, A. and Martin, A. (1986) Variation in Tannin Content in Vicia faba L. Journal of Agriculture and Food Chemistry, 30, 1087-1089. http://dx.doi.org/10.1017/s0021859600063978
Price, M.L., Hagerman, A.E. and Butler, L.G. (1980) Tannin in Sorghum Grain: Effect of Cooking on Chemical Assays and on Antinutritional Properties in Rats. Nutrition Reports International, 21, 761-767.
Eltinay, A.H., Mahgoub, S.O., Mohamed, B.E. and Hamad, M.A. (1989) Proximate Composition and Mineral and Phytate Content of Legumes Grown in Sudan. Journal of Food Composition and Analysis, 2, 69-78. http://dx.doi.org/10.1016/0889-1575(89)90065-3
Elhardallou, S.B. and Walker, A.F. (1992) Binding of Iron by Three Starchy Legumes in the Presence of Iron Alone with Calcium, Zinc, Magnesium and Copper. International Journal of Food Science and Nutrition, 43, 61-68. http://dx.doi.org/10.3109/09637489209027533
O’dell, B.L. (1979) Effect of Soy Protein on Trace Mineral Availability. In: Wilcke, H.L., Hopkins, D.T. and Waggle, D.H., Eds., Soy Proteins and Human Nutrition, Academic Press, New York, 187-207. http://dx.doi.org/10.1016/b978-0-12-751450-5.50016-4
Reddy, N.R. and Sathe, S.K. and Salunkhe, D.K. (1982) Phytate in Legumes and Cereals. Advances in Food Research, 28, 1-18. http://dx.doi.org/10.1016/S0065-2628(08)60110-X
Elhardallou, S.B., Eltinay A.H. and Nour, A.A.M. (1980) Chemical Characteristics of Some Legumes Grown in the Sudan. Sudan Journal of Food Science Technology, 12, 35-42.
Eltinay, A.H., Mahgoub, S.O., Mohamed, B.E. and Hamad, M.A. (1989) Proximate Composition and Mineral and Phytate Content of Legumes Grown in Sudan. Journal of Food Composition and Analysis, 2, 69-78. http://dx.doi.org/10.1016/0889-1575(89)90065-3
Kumar, N.R., Ready, A.N. and Rao, K.N. (1979) Levels of Phenolic Substance on the Leachionted in Cicezo Seed. Journal of Experimental Biology, 17, 114-116.
Elkhalifa, E.A. (1997) Effect of Heat Treatment on Physico-Chemical and Functional Properties of Lablab Bean and Cowpea Flours and Their Utilization in Kisra and Bread Products. A Report of the Work Carried out under U.N.U. Fellowship, Central Food Technology Research Institute, Mysore.
Phillips, R.D. (1982) Preparation and Composition of Dry Millet Flour from Cowpea. Journal of American Oil Chemists’ Society, 59, 351-353. http://dx.doi.org/10.1007/BF02541018
Griffiths, D.W. (1984) The Trypsin and Chymotrypsin Inhibitor Activities of Various Peas (Pisum spp.) and Field Bean (Vicia faba) Cultivars. The Journal of the Science of Food and Agriculture, 35, 481-486. http://dx.doi.org/10.1002/jsfa.2740350502
Rangel, R., Saraiva, K., Schwengber, P., Narciso, M.S., Gilberto, B.D., Ferreira, S.T. and Pedrosa, C. (2003) Biological Evaluation of a Protein Isolate from Cowpea (Vigna ungiculata) Seeds. Food Chemistry, 87, 491-499. http://dx.doi.org/10.1016/j.foodchem.2003.12.023
Khalil, A.H. and Mansour, E.H. (1995) The Effect of Cooking, Autoclaving and Germination on Nutritional Quality of Faba Beans. Food Chemistry, 54, 177-182. http://dx.doi.org/10.1016/0308-8146(95)00024-D