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Vol. 24 No. 4 (2025)

Articles

Evaluation of diversity in quantitative and qualitative characteristics of different white eggplant genotypes under climatic conditions of Karaj, Iran

DOI: https://doi.org/10.24326/asphc.2025.5434
Submitted: 14 September 2024
Published: 29.08.2025

Abstract

The eggplant (Solanum melongena L.) is one of the most consumed and healthiest vegetables in the world. This plant is important both nutritionally and medicinally. This research, based on a randomized complete block design, investigated the quantitative and qualitative traits of nine inbred lines (11111, 11121, 11122, 13411, 13421, 13511, 13521, 24111, and 51311) and one commercial cultivar of white eggplant (Aretussa) in two growing seasons (2021–2022, and 2022–2023) in the climatic conditions of Karaj, Iran. The analysis of variance showed that the interaction of year and genotypes was significant for all studied traits, as plant height, leaf length and width, fruit yield, and content of minerals (P, Ca, K, Fe, Zn, Mg), protein, vitamin C, dry matter, crude fat, crude fiber, and total carbohydrates in the fruit. The comparison of means revealed that genotype 13511 had the tallest plants. Aretussa was the best genotype in terms of yield, vitamin C, crude fiber, and protein, and genotypes 51311 and 11121 were the best in P and K. The variation range of the genotype was not wide in qualitative traits, but as a summary of the two years, the three genotypes of 13421, 51311, and Aretussa can be recommended as the best genotypes in terms of fruit yield per ha, while there were close to one another in fruit quality.

References

  1. AOAC (2010). Official Methods of Analysis. Association of Official Analytical Chemists, Washington DC.
  2. AOAC International (2016). Official Methods of Analysis of AOAC International (20th ed.). Gaithersburg, MD: AOAC International.
  3. Agoreyo, B.O., Obansa, E.S., Obanor, E.O. (2012). Comparative nutritional and phytochemical analyses of two varieties of Solanum melongena. Sci. World J., 7(1), 5–8.
  4. Arivalagan, M., Bhardwaj, R., Gangopadhyay, K.K., Prasad, T.V., Sarkar, S.K. (2013). Mineral composition and their genetic variability analysis in eggplant (Solanum melongena L. germplasm. J. Appl. Bot. Food Qal., 86(1), 99–103. https://doi.org/10.5073/JABFQ.2013.086.014
  5. Arivalagan, M., Gangopadhyay, K.K., Kumar, G., Bhardwaj, R., Prasad, T.V., Sarkar, S.K., Roy, A. (2012). Variability in mineral composition of Indian eggplant (Solanum melongena L.) genotypes. J. Food Compos. Anal., 26(1–2), 173–176.
  6. Aryapak, S., Ziarati, P. (2014). Nutritive value of Persian walnut (Juglans regia L.) orchards. Am.-Euras. J. Agric. Environ. Sci., 14(11), 1228–1235.
  7. Bidaramali, V., Akhtar, S., Das, A. (2020). Proximate composition and bioactive compounds in diverse eggplant genotypes. Curr. J. Appl., 39(4), 113–121.
  8. Fallahi, F., Abdossi, V., Bagheri, M., Ghanbari Jahromi, M., Mozaffari, H. (2023). Evaluation of morphological and phytochemical diversity of some white eggplant genotypes. J. Crop. Improv., 25(2), 485–504. https://doi.org/10.22059/jci.2022.341315.2696
  9. FAOSTAT (2024). Countries by commodity. Available: https://www.fao.org/faostat/en/#rankings/countries_by_commodity [date of access: 21.05.2024].
  10. Guillermo, N.M., Dolores, M.R., Gardea-Bejar, A., Gonzalez-Aguilar, G., Heredia, B., Manuel, B.S., De La Rocha, R.V. (2014). Nutritional and nutraceutical components of commercial eggplant types grown in Sinaloa, Mexico. Not. Bot. Horti Agrobot. Clu- Napoca, 42(2), 538–544.
  11. Gurbuz, N., Uluişik, S., Frary, A., Frary, A., Doğanlar, S. (2018). Health benefits and bioactive compounds of eggplant. Food Chem., 268, 602–610. https://doi.org/10.1016/j.foodchem. 2018.06.093
  12. Hakim, M.A., Biswas, B.K., Hasanuzzaman, M., Matin, M.Q.I., Banu, M.B., Barma, N.C.D., Joshi, A.K. (2021). Genotype environment interaction (G × E) of heat tolerant wheat genotypes over locations and years. Am. J. Plant Sci., 12(11), 1633–1645.
  13. Kameli, A.M., Kiani, G., Kazemitabar, S.K. (2020). The Evaluation of phenotypic diversity in eggplant (Solanum melongena L.) genotypes. J. Veg. Sci., 3(2), 31–41. https://doi.org/10.22034/iuvs.2020.114655.1071
  14. Khaleghi, S., Mobli, M., Baninasab, B., Majidi, M.M. (2019). Study of variation of yield and morphological traits of some local varieties of Iran’s eggplant (Solanum melongena L.). J. Crop Prod. Process., 9(1), 15–32. http://dx.doi.org/10.29252/jcpp.9.1.15
  15. Mazumdar, B.C., Majumdar, K. 2003. Methods on physicochemical analysis of fruits. University College of Agriculture, Calcutta University, 108–109.
  16. Nadeeshani, H., Samarasinghe, G., Wimalasiri, S., Silva, R., Hunter, D., Madhujith, T. (2021). Comparative analysis of the nutritional profiles of selected Solanum species grown in Sri Lanka. J. Food Compos. Anal., 99, 103847.
  17. Owuor, P.O., Kamau, D.M., Kamunya, S.M., Msomba, S.W., Uwimana, M.A., Okal, A.W., Kwach, B.O. (2011). Effects of genotype, environment and management on yields and quality of black tea. In: Lichtfouse, E. (ed.). Genetics, biofuels and local farming systems. Sustain. Agric. Rev., Springer, Dordrecht, 277–307. https://doi.org/10.1007/978-94-007-1521-9_10
  18. Ossamulu, I.F., Akanya, H.O., Jigam, A.A. and Egwim, E.C. (2014). Evaluation of nutrient and phytochemical constituents of four eggplant cultivars. Food Sci., 73, 26424–26428.
  19. Quamruzzaman, A.K.M., Khatun, A., Islam, F. (2020). Nutritional content and health benefits of Bangladeshi eggplant cultivars. Eur. J. Agric. Food Sci., 2(4), 1–7. http://dx.doi.org/10.24018/ejfood.2020.2.4.76
  20. Rodriguez-Jimenez J.R., Amaya-Guerra C.A., Baez-Gonzalez J.G., Aguilera-Gonzalez C., Urias-Orona V., Nino-Medina G. (2018). Physicochemical, functional, and nutraceutical properties of eggplant flours obtained by different drying methods. Molecules, 23, 3210. https://doi.org/10.3390/molecules23123210
  21. Rosa-Martínez, E., García-Martínez, M.D., Adalid-Martínez, A.M., Pereira-Dias, L., Casanova, C., Soler, E., Figàs, M.R., Raigón, M.D., Plazas, M., Soler, S. and Prohens, J. (2021). Fruit composition profile of pepper, tomato and eggplant varieties grown under uniform conditions. Food Res., 147, 110531.
  22. San José, R., Sánchez‐Mata, M.C., Cámara, M., Prohens, J. (2014). Eggplant fruit composition as affected by the cultivation environment and genetic constitution. J. Sci. Food Agric., 94(13), 2774–2784.
  23. Shabetya, O.N., Kotsareva, N.V., Nasser, A.M., Katskaya, A.G. and Al-Maidi, A.A. (2020). Biochemical composition of eggplant and its change during storage. Plant Arch., 20, 385–388.
  24. Sharma, M., Kaushik, P. (2021). Biochemical composition of eggplant fruits. A review. Appl. Sci., 11(15), 7078. https://doi.org/10.3390/app11157078
  25. Turhan, A., Kuscu, H. (2019). [Effects of salinity stress on water use efficiency, yield components, leaf chlorophyll and carotenoid content of eggplant (Solanum melongena L.)]. Yuzuncu Yil Univ. J. Agric. Sci., 29(1), 60–68. In Turkish. https://doi.org/10.29133/yyutbd.462094
  26. Yarmohammadi, F., Ghasemzadeh Rahbardar, M., Hosseinzadeh, H. (2021). Effect of eggplant (Solanum melongena) on the metabolic syndrome. A review. Iran J. Basic Med. Sci., 24(4), 420–427. https://doi.org/10.22038/ijbms.2021.50276.11452

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