Comparative analysis of the nutritive and antinutritive values of the pulps and kernels of Mafida (Spondias sp. cf. S. mombin L., wild variety) and Mobola plum (Parinari curatellifolia Cav.) in Akwanga, north-central Nigeria

Authors

  • Ban John Abok
    Department of Chemistry, Federal University of Lafia, P.M.B. 146, Nasarawa State, Nigeria;
    Department of Chemistry, College of Education Akwanga, P.M.B. 05, Nasarawa State, Nigeria
  • Mathew Olaleke Aremu
    Department of Chemistry, Federal University of Lafia, P.M.B. 146, Nasarawa State, Nigeria
  • Jude Chinedu Onwuka
    Department of Chemistry, Federal University of Lafia, P.M.B. 146, Nasarawa State, Nigeria
  • Folashade Habibat Omotehinwa
    Department of Chemistry, Federal University of Health Sciences, Otukpo, Benue State, Nigeria

Keywords:

Mafida, Mobola plum, Antinutritional factors, Amino acids

Abstract

This study comparatively evaluated the proximate composition, mineral content, antinutritional factors, and amino acid profiles of the pulps and kernels of Mafida and Mobola plum collected in Akwanga Local Government Area, Nasarawa State, Nigeria. Samples were prepared and analysed using standard analytical methods. The kernels of both fruits contained more protein, fat, and metabolic energy than their corresponding pulps. Mafida kernel contained 27.01% crude protein and 18.38% total fat, whereas Mobola plum kernel contained 33.96% crude protein and 22.32% total fat. Mafida pulp had higher moisture, carbohydrate, and crude fibre contents, and Mobola plum pulp had a notably higher carbohydrate content (53.50%) than its kernel. Both fruits contained measurable macro- and trace elements, including Na, K, Ca, Mg, Fe, Zn, and Cu; however, their overall contribution to dietary mineral requirements was limited. Oxalates, phytates, alkaloids, phenolics, and other antinutritional factors occurred at appreciable concentrations, indicating that processing may improve nutritional safety and nutrient bioavailability. All nine essential amino acids were detected, with the kernels generally showing higher total amino acid contents and better protein quality than the pulps. Mafida and Mobola plum kernels therefore have potential as protein- and energy-dense ingredients, but processing and bioavailability studies are required before their use in food formulations can be recommended.

Dimensions

[1] M. Samtiya, R. E. Aluko & T. Dhewa, ``Plant food anti-nutritional factors and their reduction strategies: an overview'', Food Production, Processing and Nutrition 2 (2020) 6. https://doi.org/10.1186/s43014-020-0020-5.

[2] M. O. Aremu, J. A. Okpele, H. Ibrahim, S. C. Ortutu, M. A. Mohammed & R. B. Salau, ``Comparative studies on nutrient and anti-nutrient composition of carrot (Daucus carota L.) and cucumber (Cucumis sativus L.)'', International Journal of Sciences 11 (2022) 13. https://doi.org/10.18483/ijSci.2543.

[3] H. F. Gemede & N. Ratta, ``Antinutritional factors in plant foods: potential health benefits and adverse effects'', International Journal of Nutrition and Food Sciences 3 (2014) 284. https://doi.org/10.11648/j.ijnfs.20140304.18.

[4] R. Salim, I. B. Nehvi, R. A. Mir, A. Tyagi, S. Ali & O. M. Bhat, ``A review on anti-nutritional factors: unraveling the natural gateways to human health'', Frontiers in Nutrition 10 (2023) 1215873. https://doi.org/10.3389/fnut.2023.1215873.

[5] Encyclopaedia Britannica, ``Anacardiaceae'', 2025. Available online: https://www.britannica.com/plant/Anacardiaceae. Accessed 6 February 2025.

[6] N. L. Britton & A. Brown, An Illustrated Flora of the Northern United States, Canada and the British Possessions, 2nd ed., Charles Scribner's Sons, New York, USA, 1913. https://www.biodiversitylibrary.org/bibliography/940.

[7] J. D. Mitchell & D. C. Daly, ``A revision of Spondias L. (Anacardiaceae) in the Neotropics'', PhytoKeys 55 (2015) 1. https://doi.org/10.3897/phytokeys.55.8489.

[8] J. A. Ibrahim, H. O. Egharevba, A. I. Jegede, G. E. Ugbebe, I. Muazzam, O. F. Kunle & K. S. Gamaniel, ``Medicinal plants used and the perception of plant endangerment by the traditional medicine practitioners of Nasarawa State, Nigeria: a pilot study'', International Journal of Biodiversity and Conservation 8 (2016) 8. https://doi.org/10.5897/IJBC2015.0842.

[9] L. E. C. Chatepa, K. Masamba & M. Jose, ``Proximate composition, physical characteristics and mineral content of fruit, pulp and seeds of Parinari curatellifolia (Maula) from Central Malawi'', African Journal of Food Science 12 (2018) 238. https://doi.org/10.5897/AJFS2017.1662.

[10] C. O. Keke, L. A. Nwaogu, C. U. Igwe, K. L. Ekeke & W. N. Nsofor, ``Phytochemical and nutritional composition of ethanol-water leaf extracts of Justicia secunda and Jatropha tanjorensis'', GSC Biological and Pharmaceutical Sciences 23 (2023) 42. https://doi.org/10.30574/gscbps.2023.23.3.0216.

[11] M. O. Aremu, L. P. Abeekaa, C. Zando, B. C. Obasi, O. D. Aremu, D. B. Passali & F. H. Omotehinwa, ``Proximate, phytochemical and amino acid compositions of Sodom apple (Calotropis procera) leaves and fruits'', Lafia Journal of Scientific and Industrial Research 1 (2023) 28. https://doi.org/10.62050/ljsir2023.v1n2.271.

[12] P. R. K. Tanou & K. M. Koffi, ``Physicochemical, biochemical and phytochemical characterization of ripe fruit of the mombin plum (Spondias mombin) from C^ote d'Ivoire'', Journal of Food and Nutrition Research 11 (2022) 652. https://doi.org/10.12691/jfnr-11-10-7.

[13] W. Horwitz (Ed.), Official Methods of Analysis of the Association of Official Analytical Chemists, 13th ed., Association of Official Analytical Chemists, Washington, DC, USA, 1980. Available online: https://archive.org/stream/gov.law.aoac.methods.1980/aoac.methods.1980_djvu.txt.

[14] R. Kaur, S. Arora & A. K. Thukral, ``Quantitative and qualitative analysis of saponins in different plant parts of Chlorophytum borivilianum'', International Journal of Pharma and Bio Sciences 6 (2015) 826. https://www.academia.edu/17016019/Quantitative_and_qualitative_analysis_of_saponins_in_different_plant_parts_of_Chlorophytum_borivilianum.

[15] D. Krishnaiah, T. Devi, A. Bono & R. Sarbatly, ``Studies on phytochemical constituents of six Malaysian medicinal plants'', Journal of Medicinal Plants Research 3 (2009) 67. Available online: https://academicjournals.org/article/article1380370874_Krishnaiah%20et%20al.pdf.

[16] K. Santhi & R. Sengottuvel, ``Qualitative and quantitative phytochemical analysis of Moringa concanensis Nimmo'', International Journal of Current Microbiology and Applied Sciences 5 (2016) 633. https://doi.org/10.20546/ijcmas.2016.501.064.

[17] D. P. Mishra, N. Mishra, H. B. Musale, P. Samal, S. P. Mishra & D. P. Swain, ``Determination of seasonal and developmental variation in oxalate content of Anagallis arvensis plant by titration and spectrometric method'', The Pharma Innovation Journal 6 (2017) 105. Available online: https://www.thepharmajournal.com/archives/2017/vol6issue6/PartB/6-6-6-151.pdf.

[18] J. B. Harborne, Phytochemical methods: a guide to modern techniques of plant analysis, Chapman and Hall, London, UK, 1973. Available online: https://link.springer.com/book/9780412572609.

[19] K. Sivakumaran & S. Kothalawala, ``An overview of the analytical methods for food phytates'', International Journal of Chemical Studies 6 (2018) 2016. https://www.researchgate.net/publication/323414648_An_overview_of_the_analytical_methods_for_food_phytates.

[20] M. O. Aremu, H. Ibrahim, A.-Q. S. Gwadebe, S. S. Audu, M. A. Mohammed, M. O. Omosebi & E. D. Aremu, ``Nutritional evaluation of Clarias gariepinus and Tilapia guineensis fishes from River Doma in Nasarawa State, Nigeria'', European Journal of Nutrition & Food Safety 13 (2021) 33. https://doi.org/10.9734/EJNFS/2021/v13i1130464.

[21] O. Babatunde, O. P. Ogunwale, O. O. Ajayi & I. A. Ajayi, ``Correlation between oil, protein and carbohydrate content of plant seeds, skin and fruit pulp'', Journal of the Chemical Society of Nigeria 47 (2022) 190. https://doi.org/10.46602/jcsn.v47i1.713.

[22] Z. K. Abdisa, K. N. Andersa, A. Y. Tadesse, E. H. Ahmed, T. T. Alemu & H. H. Mohammed, ``A comparative study of proximate compositions, phytochemical constituents, and anti-nutritional contents of pulps and seeds of Garcinia buchananii fruit'', Heliyon 11 (2025) e41283. https://doi.org/10.1016/j.heliyon.2024.e41283.

[23] B. Llorente, L. D'Andrea & M. Rodriguez-Concepcion, ``Evolutionary recycling of light signaling components in fleshy fruits: new insights on the role of pigments to monitor ripening'', Frontiers in Plant Science 7 (2016) 263. https://doi.org/10.3389/fpls.2016.00263.

[24] University of Hawai'i at M={a}noa Food Science and Human Nutrition Program, ``Proteins: Functions in the Body'', in Human Nutrition 2e. Honolulu, HI, USA, 2022. Available online: https://louis.pressbooks.pub/nutrition/.

[25] J. S. de Freitas, A. de A. Novo, C. N. Kunigami, D. de L. Moreira, S. P. Freitas, V. M. da Matta, E. P. Jung & L. de O. Ribeiro, ``Spondias tuberosa and Spondias mombin: nutritional composition, bioactive compounds, biological activity and technological applications'', Resources 13 (2024) 68. https://doi.org/10.3390/resources13050068.

[26] M. O. Aremu, H. Ibrahim, T. O. Bamidele, R. B. Salau, F. J. Faleye & B. Z. Musa, ``Nutrient and anti-nutrient composition of shea (Vitellaria paradoxa C. F. Gaertn) kernel and pulp in north-east Nigeria'', International Journal of Sciences 7 (2018) 56. https://doi.org/10.18483/ijSci.1811.

[27] A. O. Oladimeji & M. O. Bello, ``Proximate analysis and fatty-acid profiles of Mobola plum seed'', Elixir Applied Chemistry 41 (2011) 5942. https://www.elixirpublishers.com/articles/1685698618_201112063.pdf.

[28] J. Garba, A. Oba, A. Ofili, B. John, H. Isah, K. V. John & J. A. Musa, ``Phytochemical screening, proximate composition and mineral element analysis of Neocarya macrophylla (gingerbread) plum and its effects on microorganisms'', Journal of Biochemistry, Microbiology and Biotechnology 10 (2022) 76. https://doi.org/10.54987/jobimb.v10i1.716.

[29] M. O. Aremu, C. C. Nweze & P. Alade, ``Evaluation of protein and amino acid composition of selected spices grown in the Middle Belt region of Nigeria'', Pakistan Journal of Nutrition 10 (2011) 991. https://doi.org/10.3923/pjn.2011.991.995.

[30] D. M. Richard, M. A. Dawes, C. W. Mathias, A. Acheson, N. Hill-Kapturczak & D. M. Dougherty, ``L-Tryptophan: basic metabolic functions, behavioral research and therapeutic indications'', International Journal of Tryptophan Research 2 (2009) 45. https://doi.org/10.4137/IJTR.S2129.

[31] A. Savych, S. Marchyshyn, M. Harnyk, V. Kudria & A. Ocheretniuk, ``Determination of amino acids content in two samples of the plant mixtures by GC-MS'', Pharmacia 68 (2021) 283. https://doi.org/10.3897/pharmacia.68.e63453.

[32] A. E. Harper, ``Amino acid scoring patterns'', Joint FAO/WHO/UNU Expert Consultation on Energy and Protein Requirements, Rome, Italy, 1981. Available online: https://www.fao.org/4/m3013e/m3013e00.htm.

Q3

Published

2026-08-19

How to Cite

Comparative analysis of the nutritive and antinutritive values of the pulps and kernels of Mafida (Spondias sp. cf. S. mombin L., wild variety) and Mobola plum (Parinari curatellifolia Cav.) in Akwanga, north-central Nigeria. (2026). Recent Advances in Natural Sciences, 4(2), 353. https://doi.org/10.61298/rans.2026.4.2.353

How to Cite

Comparative analysis of the nutritive and antinutritive values of the pulps and kernels of Mafida (Spondias sp. cf. S. mombin L., wild variety) and Mobola plum (Parinari curatellifolia Cav.) in Akwanga, north-central Nigeria. (2026). Recent Advances in Natural Sciences, 4(2), 353. https://doi.org/10.61298/rans.2026.4.2.353