Physico-Chemical Properties of Selected Cassava Varieties Suitable for Fufu Processing in South-East Abia Nigeria, Nigeria

Authors

  • Chijioke Ugo National Root Crops Research Institute

DOI:

https://doi.org/10.47604/ijf.3485

Keywords:

Cassava, Fufu, Physico-chemical Properties, Adoption, Processing

Abstract

Purpose: The physicochemical properties of cassava varieties have a major influence on the adoption and utilization for fufu processing and consumption across different locations in Nigeria especially the South-East region. This study evaluated the chemical composition, functional, and pasting properties of thirteen cassava (Manihot esculenta Crantz) varieties, including improved and farmer-preferred local varieties, to determine their suitability for fufu production in Abia State, Nigeria.

Methodology: These physicochemical properties were determined using standard analytical procedures.  The data collected were analysised using R- statistical package.

Findings: The result obtained showed that the dry matter content of all the varieties ranged between 30% (NR8082) to 48.37% (the local clone). Starch content varied significantly, ranging from 47.46% to 61.20%, while total sugar ranged from 2.85% to 4.72%. Amylose and amylopectin contents indicated that most varieties could be classified as regular starch types, with desirable amylose-to-amylopectin ratios for fufu processing. The result of functional properties such as swelling power (9.12–14.99 g/g), solubility, and water absorption capacity also indicate these varieties are suitable for fufu processing. Pasting characteristics, including peak, final, and setback viscosities, revealed varietal suitability for specific textural and sensory attributes of fufu.

Unique Contribution to Theory, Practice and Policy: Overall, several improved cassava varieties exhibited comparable or superior quality traits relative to the local variety, suggesting their potential for adoption by processors and consumers seeking desirable fufu qualities.

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References

Abiodun, O. A., and Akinoso, R. (2014). Textural and functional properties of yam flour as affected by blanching and drying temperature. Food Science and Biotechnology, 23(4), 1047–1053. https://doi.org/10.1007/s10068-014-0141-3

Adebowale, A. A., Sanni, S. A., and Awonorin, S. O. (2005). Effect of texture modifiers on the physicochemical and sensory properties of dried fufu. Food Science and Technology International, 11(5), 373–382. https://doi.org/10.1177/1082013205058531

Adegun, I. K., Adekanye, T. A., and Ogunsola, F. I. (2010). Effect of different fermentation methods on the quality of sour cassava starch. African Journal of Food, Agriculture, Nutrition and Development, 10(5), 2395–2409.

Adejumo, A. (2012). High dry matter content as an indicator of suitability of cassava roots for long-term storage.

Afoakwa, E. O., Budu, A. S., Asiedu, R., and Sakyi-Dawson, E. (2011). Viscosity, chemical composition and sensory characteristics of cassava varieties for fufu processing. African Journal of Food Science, 5(3), 131–140.

Afoakwa, E. O., Budu, A. S., Asiedu, R., and Sakyi-Dawson, E. (2012). Physico-functional and pasting properties of cassava starches from different genotypes. African Journal of Food Science, 6(3), 60–67. https://doi.org/10.5897/AJFS11.164

Akintunde, T. Y., and Akintunde, B. O. (2013). Physicochemical and functional characteristics of starches from selected maize hybrids cultivated in Nigeria. International Journal of Biological, Biomolecular, Agricultural, Food and Biotechnological Engineering, 7(5), 386–390.

Alamu, E. O., Maziya-Dixon, B., Popoola, I. O., and Menkir, A. (2017). Evaluation of maize hybrids for variability in kernel quality attributes. Journal of Food Quality, 2017, Article ID 7098746. https://doi.org/10.1155/2017/7098746

AOAC International. (2000). Official methods of analysis of AOAC International (17th ed.). Gaithersburg, MD: AOAC International.

Arinola, A., Adebiyi, J. A., and Sobukola, O. P. (2017). Functional properties of sour cassava starch and implications on textural quality of cooked cassava paste (fufu). Food Science and Human Wellness, 6(2), 65–72. https://doi.org/10.1016/j.fshw.2017.02.001

Arisaka, M., and Yoshi, K. (1999). Modified starches with low gelatinization temperature and their production methods. Japan Patent JP 11105936 A.

Aryee, F. N. A., Oduro, I., Ellis, W. O., and Afuakwa, J. J. (2006). The physicochemical properties of flour samples from the roots of 31 varieties of cassava. Food Control, 17(11), 916–922.

Awoyale, W. (2020). Cassava: Production, processing and uses in West Africa (Book chapter). In L. O. Sanni (Ed.), Root and Tuber Crops: Innovation and Livelihood (pp. 234–255). IITA Press.

Awoyale, W., Sanni, L. O., Oyeyinka, S. A., and Shittu, T. A. (2020). Suitability of cassava starches for fufu flour: Functional and pasting properties. Starch/Stärke, 72(9–10), 1900212. https://doi.org/10.1002/star.201900212

Awuchi, C. G., Igwe, V. S., and Echeta, K. C. (2019). The functional properties of foods and flours. International Journal of Advanced Academic Research, 5(11), 139–160.

Baafi, E., and Safo-Kantanka, O. (2008). Genetic variability and correlation studies of root yield and quality traits in cassava (Manihot esculenta Crantz). Agricultural and Food Science Journal of Ghana, 7, 473–483.

Bankole, Y. O., Adebo, O. A., and Omemu, A. M. (2013). Functional and pasting properties of fermented cassava flour (lafun) fortified with defatted soy flour. Food Science and Quality Management, 12, 17–24.

Bechoff, A., Tomlins, K., Fliedel, G., et al. (2018). Starch properties of six East African cassava varieties and predictive equations for cooking quality. International Journal of Food Science and Technology, 53(3), 637–646.

Bello-Pérez, L. A., Méndez-Montealvo, M. G., and Vernon-Carter, E. J. (2000). Functional properties of modified starches by extrusion–cooking. Starch/Stärke, 52(3–4), 103–107.

BeMiller, J. N., Huber, K. C., and Whistler, R. L. (2011). Carbohydrate Chemistry for Food Scientists (3rd ed.). Elsevier.

Benesi, I. R. M. (2005). Characterization of Malawian cassava germplasm for diversity, starch extraction and its native and modified properties [Doctoral dissertation, University of the Free State, South Africa].

Bischoff, J., Tomlins, K., Fliedel, G., et al. (2017). Sensory quality and acceptability of gari and fufu from new improved cassava varieties in Nigeria. International Journal of Food Studies, 6(2), 176–187.

Brauman, A., Keleke, S., Malonga, M., Miambi, E., and Ampe, F. (1996). Microbiological and biochemical characterization of cassava retting for attiéké production. Applied and Environmental Microbiology, 62(8), 2854–2858.

Chan, H. T., Bhat, R., and Karim, A. A. (2009). Physicochemical and functional properties of ozone-oxidized starch. Food Chemistry, 113(4), 989–996.

Chika, A. F., Okoli, D. E., and Nwakor, F. N. (2013). Survey of consumer preferences for fufu quality attributes in southeastern Nigeria. Journal of Root Crops, 39(1), 1–9.

Chisenga, S. M. (2021). Nutritional and physicochemical characterization of improved cassava genotypes (Master’s thesis, University of Zambia).

Dakubu, S., and Bruce-Smith, H. (1979). Physicochemical characteristics of Ghanaian cassava starches. Ghana Journal of Agricultural Science, 12, 45–51.

Defloor, I., Dehing, I., and Delcour, J. A. (1998). Physico-chemical properties of cassava starch. Starch/Stärke, 50(2–3), 58–64.

Eke, S. O., Elemo, G. N., and Aworh, O. C. (2007). Pasting and functional properties of fermented defatted jack bean (Canavalia ensiformis) flour. Journal of Food Technology, 5(4), 273–276.

Elazu, M., and Elazu, N. (2012). Mineral content and nutritive value of cassava. Nigerian Journal of Basic and Applied Sciences, 20(3), 15–20.

Ezeigbo, O. R. (2015). Cyanide levels in cassava varieties in Nigeria. International Journal of Food Safety, 17, 24–29.

Fakair, M. N., et al. (2012). Evaluation of dry matter content in cassava varieties grown in humid regions. Tropical Agriculture, 89(1), 45–52.

Fernandez, E., et al. (1996). Physicochemical characteristics of starches from different cassava varieties. Carbohydrate Polymers, 29, 275–284.

Gerard, C., Planchot, V., Colonna, P., and Bouchet, B. (2001). Amylose–amylopectin ratios influence on starch paste properties. Carbohydrate Polymers, 44, 307–317.

Gerrano, A. S., Labuschagne, M. T., Shargie, N. G., and van Biljon, A. (2014). Starch quality and classification in African cassava cultivars. African Journal of Agricultural Research, 9(4), 420–429.

Glavas, S. (2011). Starch structure and impact on sensory quality. Food Chemistry Reviews, 2, 123–129.

Hasmadi, M., Yusof, M. S. M., and Nurul Huda, A. R. (2020). Effect of drying methods on physicochemical properties of cassava flour. IOP Conference Series: Materials Science and Engineering, 991, 012019. https://doi.org/10.1088/1757-899X/991/1/012019

Hegenbart, S. (1996). Measuring pasting characteristics of hydrocolloids using the Rapid Visco Analyzer. Food Australia, 48(10), 428–431.

Hengenbart, M. (1996). Functional properties of food starches. In Starch World Conference Proceedings.

Houssou, P., and Ayernor, G. S. (2002). Appropriate processing and food functional properties of maize flour. African Journal of Science and Technology, 3(1), 126–131.

Immanuel, S., Jaganathan, P., Prakash, P., and Sivakumar, P.S. (2024). Cassava for food security, poverty reduction and climate resilience: review. Indian Journal of Ecology; 51(1):21-31

Jobling, S. (2004). Improved starches and their use in food and industrial applications. Current Opinion in Plant Biology, 7, 210–218.

Juliano, B. O. (1971). A simplified assay for milled-rice amylose. Cereal Science Today, 16, 334–340.

Karima, R., et al. (2007). Role of phosphorus in cassava starch properties. Food Hydrocolloids, 21(4), 655–664.

Kouadia Kouadio, J., Nindjin, C., N’da, A. D., and Amani, G. N. (2011). Water absorption and swelling characteristics of starch from different improved cassava varieties in Côte d’Ivoire. Pakistan Journal of Nutrition, 10(3), 280–284.

Kulkarni, K. D., Kulkarni, D. N., and Ingle, U. M. (1991). Sorghum malt based weaning food formulations: Preparation, functional properties and nutritive value. Food and Nutrition Bulletin, 13(4), 322–327.

Kusumayanti, H., Handayani, N. A., and Santosa, H. (2015). Swelling power and water solubility of cassava and sweet potatoes flour. Procedia Environmental Sciences, 23, 164–167. https://doi.org/10.1016/j.proenv.2015.01.025

Ladeira, M. M., et al. (2013). Ash and mineral composition of Brazilian cassava starches. Brazilian Journal of Food Technology, 16(4), 307–316.

Leach, H. W., McCowen, L. D., and Schoch, T. J. (1959). Structure of the starch granule. I. Swelling and solubility patterns of various starches. Cereal Chemistry, 36(6), 534–544.

Manyong, V.M., Makinde, K.O., Bokanga, M. and Whyte, J. (2000). The contribution of IITA-Improved cassava to food security in sub-saharan Africa: an impact study. International Institute of Tropical Agriculture, Ibadan, Nigeria.

Maziya-Dixon, B., Dixon, A. G. O., and Adebowale, A. A. (2005). Targeting different end uses of cassava: Genotypic variations for cyanogenic potentials and pasting properties. International Journal of Food Science and Technology, 40(4), 455–463. https://doi.org/10.1111/j.1365-2621.2005.00969.x

McPherson, A. E., and Jane, J. (1999). Comparison of waxy and high-amylose starch properties. Cereal Chemistry, 76(6), 785–791.

Mégnanou, R. M., Koffi, K. M., and Kouadio, Y. J. (2009). Physicochemical characterization of cassava flours. Pakistan Journal of Nutrition, 8(8), 1197–1202.

Mejía-Agüero, D., Bolaños, E. A., and Zapata, H. A. (2012). Variation in starch content among cassava cultivars. Industrial Crops and Products, 37, 104–110.

Moorthy, S. N. (2002). Physicochemical and functional properties of tropical tuber starches: A review. Starch/Stärke, 54(12), 559–592. https://doi.org/10.1002/1521-379X(200212)54:12<559::AID-STAR559>3.0.CO;2-F

Moorthy, S. N. (2004). Tuber crop starches. In Advances in Carbohydrate Chemistry and Biochemistry (Vol. 59, pp. 349–408). Academic Press.

Murayama, D., Kanai, T., Inoue, M., and Ohtsubo, K. (2014). Evaluation of pasting properties of starches from various cassava genotypes. Food Science and Technology Research, 20(2), 353–359.

Murkejea, P., Narayana, K., and Mahadevaiah, S. (2007). Starch-based pharmaceutical applications: A review. Indian Drugs, 44(5), 395–402.

Mwebaze, P., Macfadyen, S., Paul De-Barro, P., Anton Bua, Kalyebi, A., Bayiyana,I., Tairo, F., and Colvin, J.( 2024). Adoption determinants of improved cassava varieties and intercropping among East and Central African smallholder farmers. Journal of The Agricultural And Applied Economics Association•;3:292–310.

Mweta, D. E., Chiona, M., and Bokosi, J. (2015). Effect of varietal difference and fermentation on functional properties of cassava flour. American Journal of Food Technology, 10(3), 105–115. https://doi.org/10.3923/ajft.2015.105.115

Narayana, K., and Narasinga Rao, M. S. (1984). Effect of partial proteolysis on the functional properties of winged pea (Psophocarpus tetragonolobus) flour. Journal of Food Science, 49(3), 944–947.

Nigel, G., et al. (2004). Starch composition in cassava roots. Starch/Stärke, 56(6), 267–274.

Nuwamanya, E., Baguma, Y., Emmambux, M., and Taylor, J. (2011). Physicochemical and functional properties of cassava starch in Uganda. Journal of Plant Breeding and Crop Science, 3(2), 31–40.

Nuwamanya, E., Baguma, Y., Emmambux, M., Rubaihayo, P., and Taylor, J. (2008). Physicochemical and functional properties of cassava starch in Uganda. Journal of Plant Breeding and Crop Science, 1(2), 001–008.

Nuwamanya, E., et al. (2009). The effect of cassava reducing sugar on functional starch properties. African Journal of Food Science, 3(2), 26–31.

Obasi, N. E., C. L. Arungwa, and C. J. Okakpu. 2018. “Evaluation of the Physicochemical, Pasting and Organoleptic Properties of Fufu Flour Produced from Different Varieties of Yellow Root Cassava (Manihot Esculenta Crantz)”. Asian Food Science Journal 3 (1):1-10. https://doi.org/10.9734/AFSJ/2018/41628.

Oduro, I., Ellis, W. O., and Dziedzoave, N. T. (2000). Quality of gari from selected processing zones in Ghana. Food Control, 11(4), 297–303. https://doi.org/10.1016/S0956-7135(00)00005-1

Oghenechavwuko, U., Adetunji, C. O., and Sanni, A. I. (2013). Quality evaluation of cassava flour produced in selected small- and medium-scale enterprises in South-Western Nigeria. Journal of Food Processing and Technology, 4(9), 271. https://doi.org/10.4172/2157-7110.1000271

Oguntimein, G. B. (1988). Cassava root composition and postharvest handling. Tropical Science, 28, 121–126.

M.O., O. , C.C., A. , & E.C., C. (2017). Proximate, Functional and Pasting Properties of Cassava Starch and Mushroom (Pleurotus Pulmonarius) Flour Blends. American Journal of Food Science and Technology, 5(1), 11-18.

Olatunde, G. O., Henshaw, F. O., and Idowu, M. A. (2017). Effect of flour blending on the functional and sensory properties of yam and cassava-based fufu. Journal of Food Processing and Preservation, 41(1), e12719. https://doi.org/10.1111/jfpp.12719

Otegbayo, B., Bokanga, M., and Aina, A. J. (2006). Pasting characteristics of raw and parboiled yam flour. Journal of Food, Agriculture and Environment, 4(1), 124–126.

Padmashree, T. S., Vijayalakshmi, L., and Puttaraj, S. (1987). Effect of traditional processing on the functional properties of cowpea flour. Journal of Food Science and Technology, 24, 221–224.

Pavlovich‐Abril, A., et al. (2005). Ash and fiber content relationship in cassava. Journal of Food Composition and Analysis, 18(4), 319–327.

Peroni, F. H. G., Rocha, T. S., and Franco, C. M. L. (2006). Some structural and physicochemical characteristics of tuber and root starches. Food Science and Technology International, 12(6), 505–513. https://doi.org/10.1177/1082013206073049

Rahman, M. M., Hossain, M. S., and Akter, M. (2003). Importance of starch content in cassava variety selection. Journal of Food Engineering, 58(4), 405–412.

Rampersad, R., Badrie, N., and Comissiong, E. (2003). Physicochemical and sensory characteristics of flours from cassava and sweet potato. Food Research International, 36(5), 357–364.

Raphael, G. N., Mrema, G. C., and Mpagalile, J. J. (2011). Physical–chemical properties of selected cassava starches. Tanzania Journal of Agricultural Sciences, 10(1), 20–28.

Rickard, J. E., Asaoka, M., and Blanshard, J. M. V. (1991). The physicochemical properties of cassava starch. Tropical Science, 31, 189–207.

Ritika, B. Y., Khatkar, B. S., and Gulia, N. (2010). Effect of incorporation of different levels of mango pulp on dough handling, nutritional and sensory characteristics of bakery products. Journal of Food Science and Technology, 47(2), 179–183.

Sabaté, A., Kouassi, K. B., and Yao, N. K. (2012). Classification of cassava starch based on amylose content. Journal of Food Measurement and Characterization, 6, 127–134.

Sanchez, T., Ceballos, H., Dufour, D., Ortiz, D., Morante, N., Calle, F., and Perez, J. C. (2010). Prediction of carotenoids and cyanide contents in cassava roots using near-infrared reflectance spectroscopy (NIRS). Journal of the Science of Food and Agriculture, 90(5), 722–729.

Sanni, L. O. (2005). Functional properties of cassava starches in Nigeria. African Crop Science Journal, 13(1), 17–24.

Sanni, L. O., Adebowale, A. A., Filani, T. A., Oyewole, O. B., and Westby, A. (2006). Quality of flash and rotary dried fufu flour. Journal of Food, Agriculture and Environment, 4(3–4), 74–78.

Santelia, D., and Zeeman, S. C. (2010). Starch degradation in plants. Cellular and Molecular Life Sciences, 67, 2281–2299.

Sasaki, T., Matsuki, J., Yasui, T., and Matsunaga, A. (2000). Viscoelasticity of starch pastes during retrogradation. Journal of Agricultural and Food Chemistry, 48, 4726–4731.

Seung, D. (2020). Starch biosynthesis in cassava and other plants. Journal of Experimental Botany, 71(19), 6062–6078.

Shittu, T. A., Dixon, A., and Awonorin, S. O. (2001). Bread from composite cassava-wheat flour: Effect of baking temperature and time on some physical properties of bread loaf. Food Research International, 34(8), 841–848.

Siah, M. K., Liu, Y., Shi, Y., and Zhang, A. (2005). Genetic analysis of developmental behavior for amylose content in filling process of rice. Journal of the Science of Food and Agriculture, 85(4), 791–797. https://doi.org/10.1002/jsfa.2027

Singh, J., Kaur, L., and McCarthy, O. J. (2003). Factors influencing the physicochemical, morphological, thermal and rheological properties of some chemically modified starches for food applications: A review. Food Hydrocolloids, 21(1), 1–22.

Singh, N., Singh, J., Kaur, L., Sodhi, N. S., and Gill, B. S. (2006). Morphological, thermal and rheological properties of starches from different botanical sources. Food Chemistry, 81(2), 219–231. https://doi.org/10.1016/S0308-8146(02)00416-8

Sosulski, F. W. (1962). The centrifuge method for determining flour absorption in hard red spring wheats. Cereal Chemistry, 39(4), 344–349.

Suresh, C. P., and Samsher. (2013). Effect of processing methods on physicochemical and functional properties of yam flour. Journal of Food Processing and Technology, 4(5), 1000237. https://doi.org/10.4172/2157-7110.1000237

Swinkels, J. J. M. (1992). Composition and properties of commercial native starches. Starch/Stärke, 44(12), 466–472. https://doi.org/10.1002/star.19920441202

Teeken, B., Olaosebikan, O., Haleegoah, J., et al. (2018). Cassava trait preferences of men and women farmers in Nigeria: Implications for breeding. International Journal of Gender, Agriculture and Food Security, 3(1), 39–62.

Teye, E., Asare, I. K., Amoah, R. S., and Amoatey, C. (2011). Assessment of some quality parameters of cassava roots and processed products from Ghana. Journal of Agricultural Biotechnology and Sustainable Development, 3(7), 120–125.

Tian, Y., and Rickard, J. E. (1991). Structure and properties of cassava starch. Journal of the Science of Food and Agriculture, 57(4), 459–491.

Udensi, E. A., and Eke, S. O. (2000). Proximate composition and functional properties of flour from cassava varieties in Nigeria. Journal of Food Technology, 2(2), 134–138.

Wilson, C. D. (1987). Mineral content in cassava-based foods. Tropical Agriculture (Trinidad), 64, 211–214.

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Published

2025-09-02

How to Cite

Ugo, C. (2025). Physico-Chemical Properties of Selected Cassava Varieties Suitable for Fufu Processing in South-East Abia Nigeria, Nigeria. International Journal of Food Sciences, 8(1), 1–22. https://doi.org/10.47604/ijf.3485

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