Biochemical, Phytochemical, and Antioxidant Characterization of Sweet Orange (Citrus Sinensis) Processing By-Products from Côte d'Ivoire

Background: Sweet orange (Citrus sinensis), is a widely cultivated fruit valued globally for its high ascorbic acid content. In Côte d'Ivoire, the fruit is predominantly processed for juice production within both informal and industrial sectors. However, processing by-products—namely the peel, pulp membrane, and seeds—constitute a major fraction of the total fruit mass and are routinely discarded, representing a significant loss of valuable bioresources.

Aims: This study aimed to evaluate the valorization potential of these agricultural by-products by establishing their biochemical and phytochemical composition profiles.

Material and Methods: Processing by-products of C. sinensis were obtained from Abidjan, Côte d'Ivoire. Physical yield and ascorbic acid content (via DCPIP titration) were evaluated on fresh matrices, whereas oven-dried specimens (65 °C, 48 h) were pulverized for compositional analysis. Proximate parameters (moisture, ash, crude fiber, fat, protein, sugars, and Atwater caloric values) were determined following standard AOAC protocols. Phytochemical screening included spectrophotometric quantification of total phenolics, flavonoids, and condensed tannins, alongside DPPH radical-scavenging assays. Data were analyzed through one-way ANOVA with Duncan's multiple range test and principal component analysis (PCA).

Results: High moisture levels (57.28 – 76.31%) indicated high perishability of the raw by-products. On a dry matter basis, proximate concentrations varied significantly across tissues: total carbohydrates ranged from 73.4 ± 0.06 % to 93.16 ± 0.47%, crude fat from 0.2 ± 0.02 to 7.17 ± 0.04%, and crude protein from 0.98 ± 0.01 to 8.26 ± 0.03%. Additionally, ash and crude fiber contents ranged from 2.98 ± 0.13 to 6.64 ± 0.11% and 2.31 ± 0.04% to 14.16 ± 0.03% respectively, confirming high energetic value. Ascorbic acid in fresh samples ranged between 7.49 ± 1.18 and 150.36 ± 3.6 mg 100g-1 fresh mass. Total phenolic contents spanned 0.39 ± 0.02 to 1.07 ± 0.00 g 100g-1 DM, flavonoids ranged from 5.31 ± 0.13 to 88,57 ± 0.11 mg 100g-1 DM, and condensed tannins ranged from 136.64 ± 5.02 and 194.73 ± 7.8 mg 100g-1 DM.

Conclusions: Given their substantial nutritional and bioactive profiles, C. sinensis processing by-products represent promising, low-cost candidates for human food fortification, animal feed formulations, and cosmeceutical applications.

Keywords

Citrus Sinensis Citrus By-Products Waste Valorization Bioactive Compounds Antioxidant Capacity Functional Foods
  • William Kwithony Disseka
    Faculty of Biochemistry and Food Technology, Department of Food Science and Technology, Laboratory of Biocatalysis and Bioprocessing, Nangui Abrogoua University of Abidjan, Abidjan, Côte d’Ivoire
  • Martin Luthère King N'gbo
    Faculty of Agriculture, University of San Pedro, 01BP 1800 San Pedro 01, Côte d’Ivoire
  • Ikpé Aristide Kouamé
    Faculty of Biochemistry and Food Technology, Department of Food Science and Technology, Laboratory of Biocatalysis and Bioprocessing, Nangui Abrogoua University of Abidjan, Abidjan, Côte d’Ivoire
  • Alahassane Sidibe
    Faculty of Biochemistry and Food Technology, Department of Food Science and Technology, Laboratory of Biocatalysis and Bioprocessing, Nangui Abrogoua University of Abidjan, Abidjan, Côte d’Ivoire
  • Bosson Jean-Aimé Assanvo
    Faculty of Biochemistry and Food Technology, Department of Food Science and Technology, Laboratory of Biocatalysis and Bioprocessing, Nangui Abrogoua University of Abidjan, Abidjan, Côte d’Ivoire
  • Meuwiah Betty Faulet-Ahonzo
    Faculty of Biochemistry and Food Technology, Department of Food Science and Technology, Laboratory of Biocatalysis and Bioprocessing, Nangui Abrogoua University of Abidjan, Abidjan, Côte d’Ivoire

How to Cite

Disseka, W. K., N'gbo, M. L. K., Kouamé, I. A., Sidibe, A., Assanvo, B. J.-A., & Faulet-Ahonzo, M. B. (2026). Biochemical, Phytochemical, and Antioxidant Characterization of Sweet Orange (Citrus Sinensis) Processing By-Products from Côte d’Ivoire. The North African Journal of Food and Nutrition Research, 9(SI), S63-S76. https://doi.org/10.51745/najfnr.9.SI.S63-S76

Adebowale, A. A., Sanni, S. A., & Oladapo, F. O. (2009). Chemical, functional and sensory properties of instant yam - breadfruit flour. Nigerian Food Journal, 26(1). https://doi.org/10.4314/nifoj.v26i1.47417 DOI: https://doi.org/10.4314/nifoj.v26i1.47417

Akpata, M. I., & Akubor, P. I. (1999). Chemical composition and selected functional properties of sweet orange (Citrus sinensis) seed flour. Plant Foods for Human Nutrition, 54(4), 353–362. https://doi.org/10.1023/a:1008153228280 DOI: https://doi.org/10.1023/A:1008153228280

Al-Anbari, A. K. H., & Hasan, M. A. (2015). Antioxidant activity in some Citrus leaves and seeds ethanolic extracts. In International Conference on Advances in Agricultural, Biological and Environmental Sciences (pp. 93–97). https://doi.org/10.15242/IICBE.C0715026 DOI: https://doi.org/10.15242/IICBE.C0715026

Association of Official Analytical Chemists. (1990). Official methods of analysis (15th ed.). Association of Official Analytical Chemists.

Arthington, J. D., Kunkle, W. E., & Martin, A. M. (2002). Citrus pulp for cattle. Veterinary Clinic Food of Animal, 18(2), 317–326. https://doi.org/10.1016/s0749-0720(02)00023-3 DOI: https://doi.org/10.1016/S0749-0720(02)00023-3

Atwater, W., & Rosa, E. (1899). A new respiratory calorimeter and conservation of energy in human body, II-physical. Physical Review, 9, 214–251. https://doi.org/10.1103/PhysRevSeriesI.9.214 DOI: https://doi.org/10.1103/PhysRevSeriesI.9.214

Bampidis, V. A., & Robinson, P. H. (2006). Citrus by-products as ruminant feeds: A review. Animal Feed Science and Technology, 128(3–4), 175–217. https://doi.org/10.1016/j.anifeedsci.2005.12.002 DOI: https://doi.org/10.1016/j.anifeedsci.2005.12.002

Broadhurst, R. B., & Jones, W. T. (1978). Analysis of condensed tannins using acidified vanillin. Journal of the Science of Food and Agriculture, 29(9), 788–794. https://doi.org/10.1002/jsfa.2740290908 DOI: https://doi.org/10.1002/jsfa.2740290908

Bernfeld, P. (1955). Amylases α and ß. In S. P. Colobick & N. O. Kalpan (Eds.), Methods in Enzymology (Vol. 1, pp. 149–158). Academic Press. https://doi.org/10.1016/0076-6879(55)01021-5 DOI: https://doi.org/10.1016/0076-6879(55)01021-5

Castro, L. A., Lizi, J. M., Chagas, E. G. L. D., Carvalho, R. A., & Vanin, F. M. (2020). From orange juice by-product in the food industry to a functional ingredient: Application in the circular economy. Foods, 9(5), 593. https://doi.org/10.3390/foods9050593 DOI: https://doi.org/10.3390/foods9050593

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