Physicochemical characteristics and nutritional value of safflower oil: A potential sustainable crop for Egypt
Background: The Increasing demand for sustainable and economical non-traditional edible oils, as alternatives to common oils is pivotal to bridge the edible oils gap, coupled with negative impacts of climate change on the agroecological settings for common oilseed crop productivity. Safflower, being one of the fast-growing medicinal oilseeds crops rich in polyunsaturated fatty acids, known as the “king of linoleic acid”, exhibits resilience to adverse environmental conditions such as high temperatures, drought, salinity, and marginal environments.
Aims: This study aimed to comprehensively assess the physicochemical characteristics and lipid nutritional indices of safflower oil to validate its potential for expanded cultivation in Egypt.
Materials and Methods: Safflower oil was extracted from seeds of two spineless varieties cultivated in Egypt. The oil was subjected to proximate analysis, physicochemical characterization, fatty acid profile determination, and α-tocopherol content analysis. Additionally, a frying stability test was carried out for safflower oil and its blends with soybean oil in different ratios, monitoring changes in free fatty acid, peroxide value, and total polar compounds. Lipid nutritional indices were calculated to assess the oil’s health-promoting properties.
Results: Safflower oil exhibited similar proximate composition and physicochemical characteristics to sunflower oil. The fatty acid profile of safflower oil was comparable to sunflower oil, with a lower oleic acid content and a higher linoleic acid content. Furthermore, safflower oil demonstrated satisfactory stability during the frying process. Lipid nutritional indices calculated based on the fatty acid profile revealed that safflower oil is a valuable source of ω-6 fatty acids. The oil exhibited favorable values for atherogenicity index (AI), thrombogenic index (TI), hypocholesterolemic / hypercholesterolemic (HH), health-promoting index (HPI), and possessed strong antioxidant properties due to its high α-tocopherol content.
Conclusion: The findings of this study support the potential of safflower oil as a promising non-traditional edible oil, suitable for expanded cultivation in Egypt. Its favorable nutritional profile and stability make it a valuable addition to the dietary landscape.
How to Cite
Almeida, O.P., de Freitas Marques, M.B., de Oliveira, J.P., da Costa, J.M.G., Rodrigues, A.P. et al. (2022). Encapsulation of safflower oil in nanostructured lipid carriers for food application. Journal of Food Science and Technology, 59(2):805-814. https://doi.org/10.1007/s13197-021-05078-5 [Crossref] [Google Scholar] [Publisher]
Almoselhy, R.I.M., Eid, M.M., Abd El-Baset, W.S. & Aboelhassan, A.F.A. (2021). Determination of 3-MCPD in Some Edible Oils using GC-MS/MS. Egyptian Journal of Chemistry, 64(3):1639-1652. https://doi.org/10.21608/ejchem.2021.64084.3373 [Crossref] [Google Scholar] [Publisher]
Almoselhy, R.I.M., Eid, M.M., Abd El-Mageed, S.M.M. & Youness, R.A. (2020). Using Nanotechnology in Bleaching Vegetable Oils. Egyptian Journal of Chemistry, 63(7):2699-2706. https://doi.org/10.21608/ejchem.2020.23625.2407 [Crossref] [Google Scholar] [Publisher]
Aşkın, B. & Kaya, Y. (2020). Effect of deep-frying process on the quality of the refined oleic/linoleic sunflower seed oil and olive oil. Journal of Food Science and Technology, 57(12):4716-4725. https://doi.org/10.1007/s13197-020-04655-4 [Crossref] [Google Scholar] [Publisher]
Ayouaz, S., Bensadia, D., Hamitri-Guerfi, F., Muhammad, D. R. A., Mouhoubi, K., Arab, R., Rahmani, Y., Guemouni, S., Hadjal, S., & Madani, K. (2022). Impact of incorporating sesame oil (Sesamum indicum L.) in an Algerian frying oil and margarine formulation. The North African Journal of Food and Nutrition Research, 6(14):165–177. https://doi.org/10.51745/najfnr.6.14.165-177 [Crossref] [Google Scholar] [Publisher]
Badem, Ş. & Baştürk, A. (2023). Oxidative stability and characterization of oleogels obtained from safflower oil-based beeswax and rice bran wax and their effect on the quality of cake samples. Journal of the American Oil Chemists’ Society, 100(8):635–649. https://doi.org/10.1002/aocs.12694 [Crossref] [Google Scholar] [Publisher]
Benmeziane, F., Araba, K. & Belahcene, A. (2024). Impact of deep-frying process on the physicochemical characteristics of two edible vegetable oils marketed in Algeria. The North African Journal of Food and Nutrition Research, 8(17):21 – 31. https://doi.org/10.51745/najfnr.8.17.21-31 [Crossref] [Google Scholar] [Publisher]
Botella-Martínez, C., Pérez-Álvarez, J.Á., Sayas-Barberá, E., Navarro Rodríguez de Vera, C., Fernández-López, J. et al. (2023). Healthier Oils: A new scope in the development of functional meat and dairy products: A review. Biomolecules, 13(5):778. https://doi.org/10.3390/biom13050778 [Crossref] [Google Scholar] [PubMed] [Publisher]
Chen, J. & Liu, H. (2020). Nutritional indices for assessing fatty acids: A mini-review. International Journal of Molecular Sciences, 21(16):5695. https://doi.org/10.3390/ijms21165695 [Crossref] [Google Scholar] [PubMed] [Publisher]
Cheng, H., Yang, C., Ge, P., Liu, Y., Zafar, M.M. et al. (2024). Genetic diversity, clinical uses, and phytochemical and pharmacological properties of safflower (Carthamus tinctorius L.): an important medicinal plant Front. Pharmacol., Sec. Ethnopharmacology, 15 – 2024. https://doi.org/10.3389/fphar.2024.1374680 [Crossref] [Google Scholar] [Publisher]

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