Abstract
Introduction
The rising consumption of edible vegetable oils underscores the importance of understanding their nutritional value, particularly in terms of fatty acid composition and vitamin E content. Podocarpus usambarensis is a plant that grows in Kahuzi-Biega National Park in the Democratic Republic of the Congo. It produces oils used by the indigenous population for cooking and medicinal purposes.
Purpose
This study examines the impact of plant age and harvest season on the fatty acid and tocopherol content of Podocarpus usambarensis oil, highlighting significant differences based on these variables and their implications for public health nutrition.
Methods
Three samples of approximately 500 g of oilseeds were collected from young and old plants in the dry season, and from young plants in both the dry and rainy seasons. After drying, crushing, and powdering the collected seeds, oil was extracted using Soxhlet's procedure. A drop of oil was methylated, and aliquots were injected into a Varian 5890 gas chromatograph for fatty acid and tocopherol analysis.
Results
The fatty acids found in the oil were monounsaturated, including oleic and palmitoleic acids; polyunsaturated, including eicosadienoic, eicosatetraenoic, linoelaidic, linoleic, and linolenic acids; and saturated, principally behenic, cerotic, palmitic, and stearic acids. Total saturated fatty acids varied between 10 and 13%. Young trees were significantly (p = 0.043) richer in monounsaturated fatty acids than polyunsaturated ones (53.14% vs. 31.46%), while in old trees, there was no significant difference between polyunsaturated and monounsaturated fatty acids (40.68% vs. 40.59%).
Conclusion
The plant is an essential source of healthier nutrients, i.e., oleic acid, linoleic acid, and tocopherols. Plant age and seasonal climate impact the yields and composition of these nutrients in Podocarpus usambarensis.
References
Abraham, G., & Hron, R. J. (1992). Oil seeds and their oils. In Y. J. Hui (Ed.), Encyclopedia of Food Science and Technology (pp. 1904–1907). John Wiley and Sons Inc.
Albakry, Z., Karrar, E., Ahmed, I. A. M., Oz, E., Proestos, C., El Sheikha, A. F., Oz, F., Wu, G., & Wang, X. (2022). Nutritional composition and volatile compounds of black cumin (Nigella sativa L.) seed, fatty acid composition and tocopherols, polyphenols, and antioxidant activity of its essential oil. Horticulturae, 8, 575.
Aluyor, E., & Ori-Jesu, M. (2009). The use of antioxidants in vegetable oils–A review. African Journal of Biotechnology, 7(25), 4836–4842.
Andrew, J. C., Müller, C., Asseng, S., Deva, C., Nicklin, K. J., Wallach, D., Vanuytrecht, E., Whitfield, S., Ramirez-Villegas, J., & Koehler, A.-K. (2018). Improving the use of crop models for risk assessment and climate change adaptation. Agricultural Systems, 159, 296–306.
Aubourg, P., Adamsbaum, C., Lavallard-Rousseau, M. C., Rocchiccioli, F., Cartier, N., Jambaque, I., Jakobezak, C., Lemaitre, A., Boureau, F., Wolf, C., & Bougneres, P.-F. (1993). A two-year trial of oleic and erucic acids (Lorenzo's oil) as treatment for adrenomyeloneuropathy. The New England Journal of Medicine, 329(11), 745–752.
Bagci, E., & Sahin, A. (2004). Fatty acid patterns of the seed oils of some Lathyrus species L. (Papilionideae) from Turkey: A chemotaxonomic approach. Pakistan Journal of Botany, 36(2), 403–413.
Barthet, V. J., Chornick, T., & Daun, J. K. (2002). Comparison of methods to measure the oil contents in oilseeds. Journal of Oleo Science, 51, 589–597.
Beres, C., Costa, G. N. S., Cabezudo, I., da Silva-James, N. K., Teles, A. S. C., Cruz, A. P. G., Mellinger-Silva, C., Tonon, R. V., Cabral, L. M. C., & Freitas, S. P. (2017). Towards integral utilization of grape pomace from winemaking process: A review. Waste Management, 68, 581–594.
Burr, G. O., Burr, M. M., & Miller, E. (1930). On the nature and role of the FAs essential in nutrition. Journal of Biological Chemistry, 86, 587. Retrieved on 2007-01-17.
Calvaruso, C., Turpault, M. P., & Frey-Klett, P. (2006). Root-associated bacteria contribute to mineral weathering and mineral nutrition in trees: A budgeting analysis. Applied and Environmental Microbiology, 72(2), 1258–1266.
Carmona-Jiménez, Y., Igartuburu, J. M., Guillén-Sánchez, D. A., & García-Moreno, M. V. (2022). Fatty acid and tocopherol composition of pomace and seed oil from five grape varieties Southern Spain. Molecules, 27, 6980.
Codex. (2013). Codex standard for named vegetable oils. Codex Stan 210-1999. Adopted in 1999. Revisions in 2009. Amendment of 2013.
Daud, N. M., Putra, N. R., Jamaludin, R., Md Norodin, N. S., Sarkawi, N. S., Hamzah, M. H. S., Mohd Nasir, H., Abang Zaidel, D. N., Che Yunus, M. A., & Md Salleh, L. (2022). Valorisation of plant seed as natural bioactive compounds by various extraction methods: A review. Trends in Food Science & Technology, 119, 201–214.
Dauqan, E., Abdullah, H. S., Abdullah, A., Muhamad, H., & Top, G. M. (2011). Vitamin E and beta carotene composition in four different vegetable oils. American Journal of Applied Sciences, 8(5), 407–412.
Devron, C. A., Nenseter, M., Brude, I. R., Finstad, H., et al. (1995). Omega-3 fatty acids: Nutritional aspects. Canadian Journal of Cardiology, 11(Suppl.), 47G-54G.
DGF. (2014). Deutsche Einheitsmethoden zur Untersuchung von Fetten, Fettprodukten, Tensiden und verwandten Stoffen. Wissenschaftliche Verlagsgesellschaft.
Dubois, V., Breton, S., Linder, M., Fanni, J., & Parmentier, M. (2007). Fatty acid profiles of 80 vegetable oils with regard to their nutritional potential. European Journal of Lipid Science and Technology, 109, 710–732.
Dupin, H., & Debry, G. (1982). Besoins nutritionnels et apports conseillés pour la satisfaction de ces besoins. Encyclopédie Médico-Chirurgicale - Glandes Endocrines - Nutrition, 10308 A10, 1–20.
Ellis-Christensen, T. (2009). What is oleic acid? WiseGEEK. http://www.wisegeek.com/what-is-oleic-acid.htm
Fernández-Ventoso, L., Toba-Pérez, A., Losada-Barreiro, S., Paiva-Martins, F., & Bravo-Díaz, C. (2022). Distributions of α- and δ-tocopherol in intact olive and soybean oil-in-water emulsions at various acidities: A test of the sensitivity of the pseudophase kinetic model. Antioxidants, 11, 2477.
Fleiss, S., McClean, C. J., King, H., et al. (2022). Limited impacts of climatic conditions on commercial oil palm yields in Malaysian plantations. CABI Agriculture and Bioscience, 3, 59.
Gao, Z., Zhu, Y., Jin, J., Jin, Q., & Wang, X. (2023). Chemical–physical properties of red palm oils and their application in the manufacture of aerated emulsions with improved whipping capabilities. Foods, 12(21), 3933.
Ghazi, Z., Ramdani, M., Fauconnier, M. L., El Mahi, B., & Cheikh, R. (2013). Fatty acids, sterols, and vitamin E composition of seed oil of Opuntia Ficus Indica and Opuntia Dillenii from Morocco. Journal of Materials and Environmental Science, 4(6), 967–972.
Goyal, A., Dubey, N., Verma, A., & Agrawal, A. (2024). Erucic acid: A possible therapeutic agent for neurodegenerative diseases. Current Molecular Medicine, 24(4), 419–427.
Guo, Y., Li, D., Liu, T., Liao, M., Li, Y., Zhang, W., Liu, Z., & Chen, M. (2022). Effect of overexpression of γ-tocopherol methyltransferase on α-tocopherol and fatty acid accumulation and tolerance to salt stress during seed germination in Brassica napus L. International Journal of Molecular Sciences, 23, 15933.
Gurr, M. I. (1999). Lipids in nutrition and health: A reappraisal. Maypole Scientific Services, The Oily Press.Hammond, E. W. (2003). Vegetables and oils—composition and analysis. In B. Caballero, L. C. Trugo, & P. M. Finglas (Eds.), Encyclopedia of Food Sciences and Nutrition (pp. 5916–5921). Elsevier Science Ltd.
Katende, A. B., Birnie, A., & Tengnas, B. O. (1995). Useful trees and shrubs for Uganda. Regional Soil Conservation Unit (RSCU), Swedish International Development Agency (SIDA).
Kasampalis, D. A., Alexandridis, T. K., Deva, C., Challinor, A., Moshou, D., & Zalidis, G. (2018). Contribution of remote sensing on crop models: A review. Journal of Imaging, 4(4), 52.
Kazadi, M., Bokota, M. T., & Mpiana, P. T. (2014). Potential new sources of oleic acids from wild plants from Kivu, D.R. Congo. Journal of Physical & Chemical Sciences, 1(2).
Katende, A. B., Birnie, A., & Tengnas, B. O. (1995). Useful trees and shrubs for Uganda. Regional Soil Conservation Unit (RSCU), Swedish International Development Agency (SIDA).
Kazadi, M., Kaaya, A. N., Kansiime, F., Tabuti, J. R. S., Baswira, S., & Otto, G.-N. (2011). Fatty acid composition of oil from some wild plants of Kahuzi-Biega National Park and surrounding areas in eastern D.R. Congo. African Journal of Food Science, 5(4), 219–226.
Matthäus, B., & Özcan, M. M. (2011). Determination of fatty acid, tocopherol, sterol contents, and 1,2- and 1,3-diacylglycerols in four different virgin olive oils. Journal of Food Processing & Technology, 2, 117.
Matthäus, B., & Özcan, M. M. (2014). Fatty acid, tocopherol, and squalene contents of Rosaceae seed oils. Botanical Studies, 55(48), 1-6.
Mogrand, S., Badoc, A., Patouille, B., Lacomblez, C., Chavent, M., Cassagne, C., & Bessoule, J.-J. (2001). Taxonomy of gymnospermae: multivariate analysis of leaf fatty acid composition. Phytochemistry, 58, 101-115.
Nogala-Kalucka, M., Rudzinska, M., Zadernowski, R., Siger, A., & Krzyzostaniak, I. (2010). Phytochemical content and antioxidant properties of seeds of unconventional oil plants. Journal of the American Oil Chemists' Society, 87, 1481–1487.
Ochs, R. (1977). A critical evaluation of soil and climatic conditions for oil palm growth and production, mainly focused on African conditions. Oléagineux, 32, 471-474.
Pérez-Jiménez, F., Lopez-Miranda, J., & Mata, P. (2002). Protective effect of dietary monounsaturated fat on arteriosclerosis: Beyond cholesterol. Atherosclerosis, 163(2), 385-398.
Riediger, N. D., Othman, R. A., Suh, M., & Moghadasian, M. H. (2008). A systematic review of the roles of n-3 fatty acids in health and disease. Journal of the American Dietetic Association, 109(4), 668-679.
Rizvi, S., Syed, T. R., Ahmed, F., Ahmad, A., Abbas, S., & Mahdi, F. (2014). The role of vitamin E in human health and some diseases. Sultan Qaboos University Medical Journal, 14(2), e157–e165.
Rizzo, W. B., Leshner, R. T., Odone, A. L., Dammann, A. L., Craft, D. A., Jensen, M. E., Jennings, S. S., Davis, S., Jaitly, R., &
Sgro, J. A. (1989). Dietary erucic acid therapy for X-linked adrenoleukodystrophy. Neurology, 39(11), 1415-1422.
Schuchardt, J. P., Beinhorn, P., Hu, X. F., Chan, H. M., Roke, K., Bernasconi, A., Hahn, A., Sala-Vila, A., Stark, K. D., & Harris, W. S. (2024). Omega-3 world map: 2024 update. Progress in Lipid Research, 95, 101286. http://creativecommons.org/licenses/by/4.0/Stephens, N. G.,
Parsons, A., Schofield, P. M., Kelly, F., Cheeseman, K., & Mitchinson, M. J. (1996). Randomised controlled trial of vitamin E in patients with coronary disease: Cambridge Heart Antioxidant Study (CHAOS). The Lancet, 347, 781-786.
Surth, Y. J. (2002). Anti-tumour promoting potential of selected spice ingredients with antioxidative and anti-inflammatory activities: A short review. Food and Chemical Toxicology, 40, 1091-1097.
Tangkanakul, P., Trakoontivakorn, G., Saengprakai, J., Auttaviboonkul, P., Niyomwitoon, N., & Nakahara, K. (2011). Antioxidant capacity and antimutagenicity of thermal processed Thai foods. JIRCAS Journal, 45(2), 211-218. www.jircas.affrc.go.jp
Tian, M., Bai, Y., Tian, H., & Zhao, X. (2023). The chemical composition and health-promoting benefits of vegetable oils: A review. Molecules, 28(17), 6393.
Verheye, W. (2010). Growth and production of oil palm. In W. Verheye (Ed.), Land Use, Land Cover and Soil Sciences. Encyclopedia of Life Support Systems (EOLSS), UNESCO-EOLSS Publishers.
Wijendran, V., & Hayes, K. C. (2004). Dietary n-6 and n-3 fatty acid balance and cardiovascular health. Annual Review of Nutrition, 24, 597–615.
Woittiez, L. S., van Wijk, M. T., Slingerland, M., van Noordwijk, M., & Giller, K. E. (2017). Yield gaps in oil palm: A quantitative review of contributing factors. European Journal of Agronomy, 83, 57–77.
Wolff, R. L., & Christie, W. W. (2002). Structures, practical sources (gymnosperm seeds), gas-liquid chromatographic data (equivalent chain lengths), and mass spectrometric characteristics of all-cis Δ5 olefinic acids. European Journal of Lipid Science and Technology, 104, 234-244.
Wolff, R. L., Pedrono, F., Marpeau, A. M., & Gunstone, F. D. (1999). The seed fatty acid composition and the distributions of Δ5-olefinic acids in the triacylglycerols of some taxares (Cephalotaxus and Podocarpus). Journal of the American Oil Chemists' Society, 76, 469-473.
Yamagiwa, J., Basabose, A. K., Kaleme, P. K., & Yumoto, T. (2005). Diet of Grauer's gorilla in the mountain forest of Kahuzi, DRC. International Journal of Primatology, 26(6), 1345-1373.
Yamagiwa, J., Basabose, A. K., Kaleme, P. K., & Yumoto, T. (2008). Phenology of fruits consumed by a sympatric population of gorillas and chimpanzees in Kahuzi-Biega National Park, Democratic Republic of Congo. African Study Monographs, 39 (Supplement), 3-22.
Zamora, A. (2005). Fats, oils, fatty acids, triglycerides—Chemical structure. Scientific Psychic. www.scientificpsychic.com/fitness/fattyacids.html
Zineddine, B., Zoheir, M., Slimane, B., Ibrahim, B., & Laid, H. (2006). Impact saisonnier sur la composition foliaire de Lygeum spartum L. en lipides totaux et en acides gras dans la région ouest-algérienne. Acta Botanica Gallica: Botany Letters, 153(3), 387-397.
Ziyad, B. A., Yousfi, M., & Heyden, Y. V. (2021). Effects of growing region and maturity stages on oil yield, fatty acid profile, and tocopherols of Pistacia atlantica Desf. fruit and their implications on resulting biodiesel. Renewable Energy, 181, 10.1016/j.renene.2021.09.057.

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