Effect of Pre-Gelatinization Conditions on the Total Oxalate Content and Techno-Functional Properties of Taro (<i>Colocasia esculenta</i>) Flour — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Effect of Pre-Gelatinization Conditions on the Total Oxalate Content and Techno-Functional Properties of Taro (<i>Colocasia esculenta</i>) Flour
Dairy, Food Science and Technology Department, Egerton University, Nakuru, Kenya
,
Dairy, Food Science and Technology Department, Egerton University, Nakuru, Kenya
,
Dairy, Food Science and Technology Department, Egerton University, Nakuru, Kenya
1 Dairy, Food Science and Technology Department, Egerton University, Nakuru, Kenya
2 Dairy, Food Science and Technology Department, Egerton University, Nakuru, Kenya
3 Dairy, Food Science and Technology Department, Egerton University, Nakuru, Kenya
Like most roots and tubers, taro ( Colocasia esculenta ) corms have a short shelf-life due to the high moisture content, which aggravates their post-harvest losses. They also contain high amounts of calcium oxalates, limiting their use in food applications. To help add value and diversify the use of taro corms as well as curb food losses, various strategies have been proposed, such processing of the corms into flour. This study aimed at evaluating the total oxalate con tent and techno-functional properties of taro flour as affected by the pre-gela tinization conditions ( i.e. , method and time). Pre-gelatinized taro flour was prepared by subjecting peeled and cleaned taro corms to roasting (190 ° C ), boiling (100 ° C ), and steaming (100 ° C ) for 10 min, 20 min and 30 min, respectively, for each method, followed by drying at 55 ° C and milling. Generally, all the properties of flour were significantly affected by the pre-gelatinization conditions ( P < 0.05). The total oxalate content of the pre-gelatinized taro flour ranged from 33.26 to 76.90 mg/100g. Pre-gelatinization by boiling significantly reduced the oxalate content (56.7%), while roasting resulted in the least reduction (36.2%). The flour colour i.e. L * , hue, and chroma ranged from 38.47 ° - 70.30 ° , 42.64 ° - 69.43 ° , and 7.78 ° - 10.58 ° , respectively. Roasting resulted in flour with the largest L * (70.30 ° ) and hue angle (69.43 ° ). Boiling also resulted in flour with the highest bulk density (BD) (0.86 g/cm 3 ) and the lowest water solubility index (WSI) (9.39%). Steamed flour had the highest water absorption index (WAI) (3.81 g/g), water holding capacity (WHC) (4.59 g/g), and swelling capacity (SC) (4.86 g/g). This study shows that pre-gelatinization ( i.e. by boiling, steaming or roasting) significantly affects the total oxalate content and techno-functional properties of taro flour, which in turn influences its use in other food applications thus increasing the utilization and production of taro simultaneously.
Scott, G.J. (2021) A Review of Root, Tuber and Banana Crops in Developing Countries: Past, Present and Future. International Journal of Food Science & Technology, 56, 1093-1114. https://doi.org/10.1111/ijfs.14778
Dreyer, H. (2017) Towards Sustainable Potato Production: Partnering to Support Family Farmers in Africa. Potato Research, 60, 237-238. https://doi.org/10.1007/s11540-018-9354-7
Chandrasekara, A. and Josheph, T. (2016) Roots and Tuber Crops as Functional Foods: A Review on Phytochemical Constituents and Their Potential Health Benefits. International Journal of Food Science, 2016, Article ID: 3631647. https://doi.org/10.1155/2016/3631647
Rashmi, D., et al. (2018) Taro (Colocasia esculenta): An Overview. Journal of Medicinal Plants Studies, 6, 156-161.
FAOSTAT (2017) Agriculture Organization of the United Nations. FAO. http://faostat3.fao.org/faostat-gateway/go/to/download/Q/QC/S
Akwee, P., et al. (2015) A Critical Review of the Role of Taro Colocasia esculenta L. (Schott) to Food Security: A Comparative Analysis of Kenya and Pacific Island Taro Germplasm. Scientia Agriculturae, 9, 101-108. https://doi.org/10.15192/PSCP.SA.2015.9.2.101108
Azene, H. and Molla, T. (2017) Nutritional Composition and Effects of Cultural Processing on Anti-Nutritional Factors and Mineral Bioavailability of Colocasia esculenta (Godere) Grown in Wolaita Zone, Ethiopia. Journal of Food and Nutrition Sciences, 5, 147-154. https://doi.org/10.11648/j.jfns.20170504.12
Hossain, M.B. (2016) Effect of Taro Flour Addition on the Functional and Physiochemical Properties of Wheat Flour and Dough for the Processing of Bread. Nutrition & Food Science International Journal, 1, 1-4. https://doi.org/10.19080/NFSIJ.2016.01.555556
Dilek, N.M. and Bilgicli, N. (2021) Effect of Taro [Colocasia esculenta (L.) Schott] Flour and Different Shortening Ratio on Physical and Chemical Properties of Gluten-sFree Cookie. Journal of Food Processing and Preservation, 45, e15894. https://doi.org/10.1111/jfpp.15894
Liu, Y., et al. (2017) Physicochemical and Structural Properties of Pregelatinized Starch Prepared by Improved Extrusion Cooking Technology. Carbohydrate Polymers, 175, 265-272. https://doi.org/10.1016/j.carbpol.2017.07.084
Akubor, P.I. and Igba, T. (2019) Effect of Pre Gelatinization and Annealing on the Chemical Composition, Functional and Pasting Properties of Starch Prepared from Unripe Banana Fruits. South Asian Journal of Food Technology and Environment, 5, 807-816. https://doi.org/10.46370/sajfte.2019.v05i01.08
Hasna, T., et al. (2020) Effect of Pre-Gelatinization on Physicochemical and Functional Properties of Solenostemon rotundifolius Flour. IOP Conference Series: Earth and Environmental Science, 524, Article ID: 012014. https://doi.org/10.1088/1755-1315/524/1/012014
Wadchararat, C., Thongngam, M. and Naivikul, O. (2006) Characterization of Pregelatinized and Heat Moisture Treated Rice Flours. Agriculture and Natural Resources, 40, 144-153.
Wijanarka, A., et al. (2017) Effect of Pre-Gelatinization on Physicochemical and Functional Properties of Gayam (Inocarfus fagifer Forst.) Flour. American Journal of Food Technology, 12, 178-185. https://doi.org/10.3923/ajft.2017.178.185
Sun, X., et al. (2018) Comparison of Pregelatinization Methods on Physicochemical, Functional and Structural Properties of Tartary Buckwheat Flour and Noodle Quality. Journal of Cereal Science, 80, 63-71. https://doi.org/10.1016/j.jcs.2018.01.016
Libert, B. (1981) Rapid Determination of Oxalic Acid by Reversed-Phase High-Performance Liquid Chromatography. Journal of Chromatography A, 210, 540-543. https://doi.org/10.1016/S0021-9673(00)80349-0
Peng, X., et al. (2002) Genotypic Difference in Aluminum Resistance and Oxalate Exudation of Buckwheat. Journal of Plant Nutrition, 26, 1767-1777. https://doi.org/10.1081/PLN-120023281
Olawoye, B. and Gbadamosi, S.O. (2020) Influence of Processing on the Physiochemical, Functional and Pasting Properties of Nigerian Amaranthus viridis Seed Flour: A Multivariate Analysis Approach. SN Applied Sciences, 2, 607. https://doi.org/10.1007/s42452-020-2418-8
McLellan, M., Lind, L. and Kime, R. (1995) Hue Angle Determinations and Statistical Analysis for Multiquadrant Hunter L, a, b Data. Journal of Food Quality, 18, 235-240. https://doi.org/10.1111/j.1745-4557.1995.tb00377.x
Nicole, M., Fei, H.Y. and Claver, I.P. (2010) Characterization of Ready-to-Eat Composite Porridge Flours Made by Soy-Maize-Sorghum-Wheat Extrusion Cooking Process. Pakistan Journal of Nutrition, 9, 171-178. https://doi.org/10.3923/pjn.2010.171.178
Lapcíková, B., et al. (2021) Effect of the Rice Flour Particle Size and Variety Type on Water Holding Capacity and Water Diffusivity in Aqueous Dispersions. LWT, 142, Article ID: 111082. https://doi.org/10.1016/j.lwt.2021.111082
Ratnawati, L., et al. (2019) Evaluation of Physicochemical, Functional and Pasting Properties of Soybean, Mung Bean and Red Kidney Bean Flour as Ingredient in Biscuit. IOP Conference Series: Earth and Environmental Science, 251, Article ID: 012026. https://doi.org/10.1088/1755-1315/251/1/012026
Yousf, N., et al. (2017) Water Solubility Index and Water Absorption Index of Extruded Product from Rice and Carrot Blend. Journal of Pharmacognosy and Phytochemistry, 6, 2165-2168.
Vijay, D. (2021) Effect of Malting and Pregelatinisation on Nutrition and Functional Properties of Bajra Flour. The Pharma Innovation Journal, 10, 914-916.
Chai, W. and Liebman, M. (2005) Effect of Different Cooking Methods on Vegetable Oxalate Content. Journal of Agricultural and Food Chemistry, 53, 3027-3030. https://doi.org/10.1021/jf048128d
Wanyo, P., et al. (2018) Effect of Hot-Air Drying and Vacuum Drying on Oxalate Contents of Limnophila aromatica and Limnophila geoffrayi. Food and Applied Bioscience Journal, 6, 65-75.
Akter, S., et al. (2020) Interactions between Phytochemicals and Minerals in Terminalia Ferdinandiana and Implications for Mineral Bioavailability. Frontiers in Nutrition, 7, Article ID: 598219. https://doi.org/10.3389/fnut.2020.598219
Albihn, P.B.E. and Savage, G.P. (2001) The Effect of Cooking on the Location and Concentration of Oxalate in Three Cultivars of New Zealand-Grown Oca (Oxalis tuberosa Mol). Journal of the Science of Food and Agriculture, 81, 1027-1033. https://doi.org/10.1002/jsfa.890
Juajun, O., et al. (2012) Effect of Cooking on the Oxalate Content of Selected Thai Vegetables. Food and Nutrition Sciences, 3, 1631-1635. https://doi.org/10.4236/fns.2012.312213
Kumoro, A.C., et al. (2014) Kinetics of Calcium Oxalate Reduction in Taro (Colocasia esculenta) Corm Chips during Treatments Using Baking Soda Solution. Procedia Chemistry, 9, 102-112. https://doi.org/10.1016/j.proche.2014.05.013
Olamiti, G., et al. (2020) Effect of Malting and Fermentation on Colour, Thermal Properties, Functional Groups and Crystallinity Level of Flours from Pearl Millet (Pennisetum glaucum) and Sorghum (Sorghum bicolor). Heliyon, 6, e05467. https://doi.org/10.1016/j.heliyon.2020.e05467
Njintang, Y.N. and Mbofung, C.M.F. (2003) Development of Taro (Colocasia esculenta (L.) Schott) Flour as an Ingredient for Food Processing: Effect of Gelatinisation and Drying Temperature on the Dehydration Kinetics and Colour of Flour. Journal of Food Engineering, 58, 259-265. https://doi.org/10.1016/S0260-8774(02)00384-9
Yulianto, A., et al. (2019) Characteristic of Comparison Partially Pregelatinized Starch and Fully Pregelatinized Starch from Cassava Starch. International Journal of Chemical Engineering and Applications, 10, 130-133. https://doi.org/10.18178/ijcea.2019.10.5.755
Marta, H. and Tensiska, T. (2017) Functional and Amylographic Properties of Physically-Modified Sweet Potato Starch. KnE Life Sciences, 2, 689-700. https://doi.org/10.18502/kls.v2i6.1091
Onyeneke, E.-B. (2019) Functional and Pasting Properties of Products of White and Yellow Cassava. Journal of Agriculture and Food Sciences, 17, 1-17. https://doi.org/10.4314/jafs.v17i1.1
Majzoobi, M., et al. (2011) Physicochemical Properties of Pre-Gelatinized Wheat Starch Produced by a Twin Drum Drier. Journal of Agricultural Science and Technology, 13, 193-202.
Lutfi, Z., et al. (2017) Morphological, Physicochemical, and Pasting Properties of Modified Water Chestnut (Trapabispinosa) Starch. International Journal of Food Properties, 20, 1016-1028. https://doi.org/10.1080/10942912.2016.1193514
Aboubakar, N., Scher, J. and Mbofung, C.M.F. (2008) Physicochemical, Thermal Properties and Microstructure of Six Varieties of Taro (Colocasia esculenta L. Schott) Flours and Starches. Journal of Food Engineering, 86, 294-305. https://doi.org/10.1016/j.jfoodeng.2007.10.006
Kaur, M., Kaushal, P. and Sandhu, K.S. (2013) Studies on Physicochemical and Pasting Properties of Taro (Colocasia esculenta L.) Flour in Comparison with a Cereal, Tuber and Legume Flour. Journal of Food Science and Technology, 50, 94-100. https://doi.org/10.1007/s13197-010-0227-6
Betene, A.D.O., et al. (2020) Physico-Chemical and Thermal Characterization of Some Lignocellulosic Fibres: Ananas comosus (AC), Neuropeltis acuminatas (NA) and Rhecktophyllum camerunense (RC). Journal of Minerals and Materials Characterization and Engineering, 8, 205-222. https://doi.org/10.4236/jmmce.2020.84014
Lawal, M.V., Odeniyi, M.A. and Itiola, O.A. (2015) Material and Rheological Properties of Native, Acetylated, and Pregelatinized Forms of Corn, Cassava, and Sweet Potato starches. Starch-Starke, 67, 964-975. https://doi.org/10.1002/star.201500044
Lai, H.-M. (2001) Effects of Hydrothermal Treatment on the Physicochemical Properties of Pregelatinized Rice Flour. Food Chemistry, 72, 455-463. https://doi.org/10.1016/S0308-8146(00)00261-2
Han, S.-H., et al. (2010) Effects of Particle Size and Gelatinization of Job’s Tears Powder on the Instant Properties. Preventive Nutrition and Food Science, 15, 67-73. https://doi.org/10.3746/jfn.2010.15.1.067
Kouakou, B., et al. (2013) Biochemical Characterization and Functional Properties of Weaning Food Made from Cereals (Millet, Maize) and Legumes (Beans, Soybeans). Journal of Food Chemistry and Nutrition, 1, 22-32.
Arivuchudar, R. (2018) Assessment of Functional Properties of Flour Mix. International Journal of Food and Fermentation Technology, 8, 81-85. https://doi.org/10.30954/2277-9396.01.2018.10
Ch, S. (2013) Assessment of Functional Properties of Different Flours. African Journal of Agricultural Research, 8, 4849-4852.