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Determination and Quantification of Proximate and Mineral Composition for 20 Improved Sorghum Varieties Grown in Machache, Lesotho

DOI: 10.4236/fns.2024.158048, PP. 744-758

Keywords: Varieties, Sorghum, Proximate, Mineral

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Abstract:

Twenty varieties of improved sorghum were grown in Machache at the Department of Agricultural Research station, located (29?22'60\"S and 27?52'0\"E) in the central foothills of Lesotho in Maseru district. The varieties were planted in a randomized complete block design. At maturity, they were harvested, dried, threshed, milled and analyzed in the crop science laboratory at the National University of Lesotho. The proximate and mineral contents were analyzed from samples in a completely randomized design with three replicates. The proximate composition parameters measured were crude proteins, crude fiber, crude fat, moisture content, and carbohydrates. The minerals analyzed were, phosphorus, sodium, calcium, magnesium, potassium, copper, zinc, iron, and magnesium. The results showed the nutritional contents ranging from (4.7% - 16.16%), (0.35% - 2.10%), (1.25% - 4.00%), (71.60% - 84.06%), (5.53% - 10.18%), for protein, fat, fiber and carbohydrate, and moisture content, respectively. Mineral content ranged from (1342.96 - 3500.34 mg/kg), (25.97 - 185.25 mg/kg), (50.71 - 511.71 mg/kg), (29.35 - 4542.13 mg/kg), (577.19 - 3041.52 mg/kg), (0.25 - 4.07 mg/kg), (1.96 - 18.61 mg/kg), (67.14 - 122.96 mg/kg), (4.73 - 11.39 mg/kg) for phosphorus, sodium, calcium, magnesium, potassium, copper, zinc, iron, and manganese respectively. The following varieties were found to have the highest and appreciable amounts of nutrients and minerals that are crucial in the country diet; protein content was KARI Mtama 1, zinc, IESX 16 2533-SB-SSI-19, and iron IESX 16 2535-SB-SSI-34.

References

[1]  Matarira, C.H., Shava, E., Pedzisai, E. and Manatsa, D. (2014) Food Insecurity in Mountain Communities of Lesotho. Journal of Hunger & Environmental Nutrition, 9, 280-296.
https://doi.org/10.1080/19320248.2014.898170
[2]  Lekota, P.M., Morojele, E.M. and Ranooko, I. (2021) Comparative Analysis of Cereal Crop Production Grown in Lesotho. International Journal of Extension and Rural Development Studies, 8, 15-25.
[3]  Hadebe, S.T., Modi, A.T. and Mabhaudhi, T. (2016) Drought Tolerance and Water Use of Cereal Crops: A Focus on Sorghum as a Food Security Crop in Sub‐Saharan Africa. Journal of Agronomy and Crop Science, 203, 177-191.
https://doi.org/10.1111/jac.12191
[4]  Sekoli, M.M.S. and Morojele, M.E. (2016) Sorghum Productivity Trends and Growth Rate for Lesotho. Global Journal of Agricultural Research, 4, 52-57.
[5]  (2021) 2019/2020 Agricultural Production Survey Crops Bureau of Statistics Report.
https://www.bos.gov.ls/
[6]  Nkhabutlane, P., de Kock, H.L. and du Rand, G.E. (2019) Culinary Practices: Preparation Techniques and Consumption of Basotho Cereal Breads in Lesotho. Journal of Ethnic Foods, 6, Article No. 12.
https://doi.org/10.1186/s42779-019-0012-8
[7]  Jakobek, L. (2015) Interactions of Polyphenols with Carbohydrates, Lipids and Proteins. Food Chemistry, 175, 556-567.
https://doi.org/10.1016/j.foodchem.2014.12.013
[8]  Jimoh, W.L.O. and Abdullahi, M.S. (2017) Proximate Analysis of Selected Sorghum Cultivars. Bayero Journal of Pure and Applied Sciences, 10, 285-288.
https://doi.org/10.4314/bajopas.v10i1.43
[9]  Paiva, C.L., Queiroz, V.A.V., Simeone, M.L.F., Schaffert, R.E., de Oliveira, A.C. and da Silva, C.S. (2017) Mineral Content of Sorghum Genotypes and the Influence of Water Stress. Food Chemistry, 214, 400-405.
https://doi.org/10.1016/j.foodchem.2016.07.067
[10]  Impa, S.M., Perumal, R., Bean, S.R., John Sunoj, V.S. and Jagadish, S.V.K. (2019) Water Deficit and Heat Stress Induced Alterations in Grain Physico-Chemical Characteristics and Micronutrient Composition in Field Grown Grain Sorghum. Journal of Cereal Science, 86, 124-131.
https://doi.org/10.1016/j.jcs.2019.01.013
[11]  Njuguna, V.W., Cheruiyot, E.K., Mwonga, S. and Rono, J.K. (2018) Effect of Genotype and Environment on Grain Quality of Sorghum (Sorghum bicolor L. Moench) Lines Evaluated in Kenya. African Journal of Plant Science, 12, 324-330.
https://doi.org/10.5897/ajps2018.1642
[12]  Horwitz, W. (2000) Official Methods of Analysis of AOAC International. 17th Edition, Oxford University Press.
[13]  Food Agriculture Organization (2003) Food Energy-Methods of Analysis and Conversion Factor. FAO Food and Nutrition Paper, 77.
[14]  Wu, G. (2016) Dietary Protein Intake and Human Health. Food & Function, 7, 1251-1265.
https://doi.org/10.1039/c5fo01530h
[15]  Mohammed, Z.S., Mabudi, A.H., Murtala, Y., Jibrin, S., Sulaiman, S. and Saluhi, J. (2019) Nutritional Analysis of Three Commonly Consumed Varieties of Sorghum (Sorghum bicolor L.) in Bauchi State, Nigeria. Journal of Applied Science and Environmental Management, 23, 1329-1334.
https://doi.org/10.4314/jasem.v23i7.21
[16]  Tasie, M.M. and Gebreyes, B.G. (2020) Characterization of Nutritional, Antinutritional, and Mineral Contents of Thirty-Five Sorghum Varieties Grown in Ethiopia. International Journal of Food Science, 2020, Article 8243617.
https://doi.org/10.1155/2020/8243617
[17]  World Food Program (WFP) (2020) Technical Specification for Sorghum Grain.
[18]  Nwadike, C., Okere, A., Nwosu, D., Okoye, C., Vange, T. and Apuyor, B. (2018) Proximate and Nutrient Composition of Some Common Bean (Phaseolus vulgaris L.) and Cowpea (Vigna unguiculata L. Walp.) Accessions of Jos-Plateau, Nigeria. Journal of Agriculture and Ecology Research International, 15, 1-9.
https://doi.org/10.9734/jaeri/2018/42138
[19]  Gebreegziabher, B.G. and Tsegay, B.A. (2020) Proximate and Mineral Composition of Ethiopian Pea (Pisum sativum var. abyssinicum A. Braun) Landraces Vary across Altitudinal Ecosystems. Cogent Food & Agriculture, 6, Article 1789421.
https://doi.org/10.1080/23311932.2020.1789421
[20]  Sanders, T.A.B. (2024) Introduction: The Role of Fats in Human Diet. In: Sanders, T.A.B., Ed., Functional Dietary Lipids, Elsevier, 1-28.
https://doi.org/10.1016/b978-0-443-15327-3.00007-0
[21]  Adebo, J.A. and Kesa, H. (2023) Evaluation of Nutritional and Functional Properties of Anatomical Parts of Two Sorghum (Sorghum bicolor) Varieties. Heliyon, 9, e17296.
https://doi.org/10.1016/j.heliyon.2023.e17296
[22]  Tasie, M.M. and Gebreyes, B.G. (2020) Characterization of Nutritional, Antinutritional, and Mineral Contents of Thirty-Five Sorghum Varieties Grown in Ethiopia. International Journal of Food Science, 2020, Article 8243617.
https://doi.org/10.1155/2020/8243617
[23]  Dhadke, S.G., Pawar, V.S. and Wanole, P.D. (2022) Effects of Popping on Nutritional Composition of Sorghum. Biological ForumAn International Journal, 14, 1199-1202.
[24]  Anderson, J.W., Baird, P., Davis Jr, R.H., Ferreri, S., Knudtson, M., Koraym, A., et al. (2009) Health Benefits of Dietary Fiber. Nutrition Reviews, 67, 188-205.
https://doi.org/10.1111/j.1753-4887.2009.00189.x
[25]  Magan, N., Hope, R., Cairns, V. and Aldred, D. (2003) Post-Harvest Fungal Ecology: Impact of Fungal Growth and Mycotoxin Accumulation in Stored Grain. European Journal of Plant Pathology, 109, 723-730.
https://doi.org/10.1023/a:1026082425177
[26]  Morishita, T., Ishiguro, K., Noda, T. and Suzuki, T. (2020) The Effect of Grain Moisture Contents on the Roll Milling Characteristics of Tartary Buckwheat Cultivar ‘Manten-Kirari’. Plant Production Science, 23, 539-546.
https://doi.org/10.1080/1343943x.2020.1747358
[27]  Li, W., Yu, Y., Wang, L., Luo, Y., Peng, Y., Xu, Y., et al. (2021) The Genetic Architecture of the Dynamic Changes in Grain Moisture in Maize. Plant Biotechnology Journal, 19, 1195-1205.
https://doi.org/10.1111/pbi.13541
[28]  FAO (2006) Lesotho Food Composition Tables.
[29]  Kaijage, J.T., Mutayo, S.K. and Katule, A. (2014) Chemical Composition and Nutritive Value of Tanzanian Grain Sorghum Varieties. Livestock Research for Rural Development, 26, Article 177.
[30]  Ape, D.I., Nwogu, N.A., Uwakwe, E.I. and Ikedinobi, C.S. (2016) Comparative Proximate Analysis of Maize and Sorghum Bought from Ogbete Main Market of Enugu State, Nigeria. Greener Journal of Agricultural Sciences, 6, 272-275.
https://doi.org/10.15580/gjas.2016.9.101516167
[31]  Weyh, C., Krüger, K., Peeling, P. and Castell, L. (2022) The Role of Minerals in the Optimal Functioning of the Immune System. Nutrients, 14, Article 644.
https://doi.org/10.3390/nu14030644
[32]  He, F.J. and MacGregor, G.A. (2008) Beneficial Effects of Potassium on Human Health. Physiologia Plantarum, 133, 725-735.
https://doi.org/10.1111/j.1399-3054.2007.01033.x
[33]  Gerrano, A.S., Labuschagne, M.T., van Biljon, A. and Shargie, N.G. (2016) Quantification of Mineral Composition and Total Protein Content in Sorghum [Sorghum bicolor (L.) Moench] Genotypes. Cereal Research Communications, 44, 272-285.
https://doi.org/10.1556/0806.43.2015.046
[34]  Osman, A., Abd El-Wahab, A., Ahmed, M.F.E., Buschmann, M., Visscher, C., Hartung, C.B., et al. (2022) Nutrient Composition and in Vitro Fermentation Characteristics of Sorghum Depending on Variety and Year of Cultivation in Northern Italy. Foods, 11, Article 3255.
https://doi.org/10.3390/foods11203255
[35]  Sulaiman, S.A., Igwegbe, A.O. and Nassarawa, S.S. (2020) Proximate and Mineral Composition of Some Selected Sorghum Varieties in Kano Metropolis. American Journal of Food and Nutrition, 8, 1-5.
[36]  Piste, P., Sayaji, D. and Avinash, M. (2012) Calcium and Its Role in Human Body. International Journal of Research in Pharmaceutical and Biomedical Sciences, 4, 2229-3701.
[37]  Chavan, U.D., Patil, S.S., Rao, B.D. and Patil, J.V. (2015) Processing of Sorghum from Different Varieties and Hybrids for Semolina and Their Products. Indonesian Journal of Agricultural Science, 16, 11-20.
https://doi.org/10.21082/ijas.v16n1.2015.p11-20
[38]  Valmorbida, J.L., Sangalli, C.N., Leffa, P.S., Baratto, P.S., Rauber, F., Mennella, J.A., et al. (2023) Sodium Intake Tracked from Infancy and Salt Taste Preference during Adolescence: Follow-up of a Randomized Controlled Field Trial in Brazil. Current Developments in Nutrition, 7, Article 100011.
https://doi.org/10.1016/j.cdnut.2022.100011
[39]  Pontieri, P., Troisi, J., Calcagnile, M., Bean, S.R., Tilley, M., Aramouni, F., et al. (2022) Chemical Composition, Fatty Acid and Mineral Content of Food-Grade White, Red and Black Sorghum Varieties Grown in the Mediterranean Environment. Foods, 11, Article 436.
https://doi.org/10.3390/foods11030436
[40]  Johnson, D.C. and Widlanski, T.S. (2003) Overview of the Synthesis of Nucleoside Phosphates and Polyphosphates. Current Protocols in Nucleic Acid Chemistry, 15, 13.1.1-13.1.31.
https://doi.org/10.1002/0471142700.nc1301s15
[41]  Lovio-Fragoso, J.P., de Jesús-Campos, D., López-Elías, J.A., Medina-Juárez, L.Á., Fimbres-Olivarría, D. and Hayano-Kanashiro, C. (2021) Biochemical and Molecular Aspects of Phosphorus Limitation in Diatoms and Their Relationship with Biomolecule Accumulation. Biology, 10, Article 565.
https://doi.org/10.3390/biology10070565
[42]  Al Alawi, A.M., Majoni, S.W. and Falhammar, H. (2018) Magnesium and Human Health: Perspectives and Research Directions. International Journal of Endocrinology, 2018, Article 9041694.
https://doi.org/10.1155/2018/9041694
[43]  Liu, G., Xia, N., Tian, L., Sun, Z. and Liu, L. (2022) Progress in the Development of Biosensors Based on Peptide—Copper Coordination Interaction. Biosensors, 12, Article 809.
https://doi.org/10.3390/bios12100809
[44]  Karaaslan Ayhan, N. (2020) Assessment of Elemental Content, Antioxidant Activity and Total Phenolic Content of Vitis Sylvestris Gmelin. Journal of the Turkish Chemical Society Section A: Chemistry, 7, 405-410.
https://doi.org/10.18596/jotcsa.689329
[45]  Fink, G. and Heitner, J. (2014) Evaluating the Cost-Effectiveness of Preventive Zinc Supplementation. BMC Public Health, 14, Article No. 852.
https://doi.org/10.1186/1471-2458-14-852
[46]  Gaston, R.T., Habyarimana, F. and Ramroop, S. (2022) Modelling for Anaemia and Malnutrition in Children Less than Five Years of Age in Lesotho: A Case Study of a Cross-Sectional Dataset Using Multivariate Joint Model. Preprint.
https://doi.org/10.21203/rs.3.rs-403762/v1
[47]  Nagesh Kumar, M.V., Ramya, V., Maheshwaramma, S., Ganapathy, K.N., Govindaraj, M., Kavitha, K., et al. (2023) Exploiting Indian Landraces to Develop Biofortified Grain Sorghum with High Protein and Minerals. Frontiers in Nutrition, 10, Article 1228422.
https://doi.org/10.3389/fnut.2023.1228422
[48]  Sguizzato, M., Martini, P., Marvelli, L., Pula, W., Drechsler, M., Capozza, M., et al. (2022) Synthetic and Nanotechnological Approaches for a Diagnostic Use of Manganese. Molecules, 27, Article 3124.
https://doi.org/10.3390/molecules27103124
[49]  Itanna, F., Letuma, P., Masupha, P., Lephole, M. and Chataika, B. (2024) Major Soil Fertility and Management Gaps in Sorghum Production in Lesotho. African Journal of Agricultural Research, 20, 163-172.
https://doi.org/10.5897/ajar2023.16573

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