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Bazı Yabani Patlıcan Türlerinin Diyarbakır Koşullarına Adaptasyonunun Belirlenmesi

Year 2022, Volume: 51 Issue: (Özel Sayı 1) 13. Sebze Tarımı Sempozyumu, 8 - 18, 19.12.2022

Abstract

Farklı stres koşullarına adaptasyon kabiliyetleri yüksek olan yabani patlıcan genotipleri, gerek habitatta kendiliğinden yetişerek ve gerekse kültüre alınarak birçok ülkede değişik amaçlarla kullanılmaktadır. Yürütülen çalışmada Asya Sebze Araştırma ve Geliştirme Merkezi’nden temin edilen farklı orjinli Solanum melongena, S.aethiopicum, S.macrocarpon, S.scabrum, S.integrifolium ve S.insanum türlerine ait toplam 9 adet genotipin Diyarbakır ekolojik koşullarında bitkisel gelişim ve verim değerlerinin belirlenmesi amaçlanmıştır. Genotiplerin ekilen tohumlarından elde edilen fideler, serada (25℃/18℃) dikim büyüklüğüne gelene kadar büyütülmüş ve açıkta yerlerine dikilerek, yörede patlıcan yetiştiriciliğinin yapıldığı süre içerisinde Mayıs ve Ekim 2020 aylarında yetiştirilmişlerdir. Üretim dönemi sonunda bitki boyu, bitki biyokütlesi, yaprak alanı, bitki başına verim, meyve boyu ve ortalama meyve ağırlığı değerleri belirlenmiştir. Türler arasındaki genotipik farklılıklar nedeni ile bitki gelişim ve verim değerlerinin varyasyon gösterdiği görülmüştür. Bitki boyu 41.0-126.0 cm, meyve boyu 1.0-7.9 cm, yaprak alanı 18.00-81.47 cm², bitki başına verim 0.18-2.09 kg arasında değişmiştir. Bitki boyu ve biyokütlesi açısından en yüksek değerlere sahip olan S.scabrum türünün, güçlü bir büyüme gösterdiği görülmüştür. Ancak tür özelliği nedeniyle tek yaprak alanı, bitki başına verim, meyve uzunluğu, çapı ve ağırlığında ise türler arasında en düşük değere sahip olduğu belirlenmiştir. S.integrifolium türünün ise diğere türlere göre en az biyokütleye sahip olduğu görülmüştür. Patlıcanın yaprağı ve meyvesi tüketilen yakın akraba türlerinden S.macrocarpon’un yaprak alanı ve meyve çapı, S.insanum’un bitki başına verimi, S.melongena türüne ait genotipin ise meyve ağırlığı yüksek bulunmuştur. Belirlenen genotiplerin meyve özellikleri nedeni ile yörede yoğun olarak tüketilen Diyarbakır yerel genotipleri ile ticari çeşitlere alternatif olamayacağı; ancak yörede biyotik ve abiyotik stres faktörleri sorununa karşı anaç ve varyasyon kaynağı olarak ıslahta kullanılabilecekleri sonucuna varılmıştır.

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Determination of The Adaptation of Some Wild Eggplant Species to Diyarbakır Conditions

Year 2022, Volume: 51 Issue: (Özel Sayı 1) 13. Sebze Tarımı Sempozyumu, 8 - 18, 19.12.2022

Abstract

Wild eggplant genotypes, which have high adaptability to different stress conditions, are used for different purposes in many countries, either by growing spontaneously in the habitat or by being cultured. This research was conducted to determine the plant development and yield in the Diyarbakır ecological conditions of 9 different originated Solanum species (S.melongena, S.aethiopicum, S.macrocarpon, S.insanum, S.scabrum, and S.integrifolium) which were obtained from the Asian Vegetable Research and Development Center. The seedlings obtained from the sown seeds of the genotypes were grown in the greenhouse (25℃/18℃) until they reached the planting size and were planted in the open field in May and October 2020, when eggplant cultivation was carried out in the region. At the end of the production period, plant height, plant biomass, single leaf area, yield per plant, fruit length, and average fruit weight were determined. Due to the genotypic differences between the species, it was observed that the plant growth and yield values showed variation. Plant height, fruit length, single leaf area and yield per plant were varied between 41.0 and 126 cm, 1.0 and 7.9 cm, 18.00 and 81.47 cm², 0.18 and 2.09 kg, respectively. S.scabrum species had the highest plant height, biomass and showed strong growth. However, due to its species characteristics, single leaf area, yield per plant, fruit length, diameter, and weight of this species were lowest among the tested species. S.integrifolium species had the lowest biomass. Single leaf area and fruit diameter of S.macrocarpon, one of the closely related species of eggplant that consume the leaves and fruit; yield per plant of S.insanum; the fruit weight of the genotype of S.melongena were found highest. Due to the fruit characteristics of the tested genotypes, it is not possible to be an alternative to Diyarbakır local genotypes and commercial varieties, which are consumed extensively in the region; However, it has been determined that they can be used in breeding as rootstock and a source of variation against the problem of biotic and abiotic stress factors in the region.

References

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  • Adamczewska-Sowıńska, K., Krygier, M. 2013. Yield quantity and quality of field cultivated eggplant in relation to its cultivar and the degree of fruit maturity. Acta Scientiarum Polonorum-Hortorum Cultus, 12:13-23.
  • Adeniji, O., Kusolwa, P., Reuben, S., Deo, P. 2012. Molecular diversity among seven Solanum (eggplant and relatives) species assessed by simple sequence repeats (SSR) markers. African Journal of Biotechnology, 11:15643-15653.
  • Akhtar, S., Solankey, S.S., Kumari, R., Rani, N. 2017. Crucial reproductive traits as indices for screening brinjal (Solanum melongena L.) under high temperature stress. Indian Journal of Ecology, 44(Special Issue) 5:331-336.
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  • Baksh, S., Iqbal, M., Jamal, A. 1978. Breeding system of Solanum integrifolium Poir. with an emphasis on sex potential and intercross ability. Euphytica, 27(3):811-815.
  • Berinyuy, J.E., Fontem, D.A., Focho, D.A., Schippers, R.R. 2002. Morphological diversity of Solanum scabrum accessions in Cameroon. Plant Genet Res News, 131:42-48.
  • Bletsos, F., Roupakias, D., Tsaktsira, M., Scaltsoyjannes, A. 2004. Production and characterization of interspecific hybrids between three eggplant (Solanum melongena L.) cultivars and Solanum macrocarpon L. Scientia Horticulturae, 101(1-2):11-21.
  • Brenes, M., Solana, A., Boscaiu, M., Fita, A., Vicente, O., Calatayud, Á., Prohens, J., Plazas, M., 2020. Physiological and biochemical responses to salt stress in cultivated eggplant (Solanum melongena L.) and in S.insanum L., a close wild relative. Agronomy, 10:651.
  • Chinedu, S.N., Olasumbo, A.C., Eboji, O.K., Emiloju, O.C., Arinola, O.K., Dania, D.I. 2011. Proximate and phytochemical analyses of Solanum aethiopicum L. and Solanum macrocarpon L. fruits. Research Journal of Chemical Sciences, 1(3):63-71.
  • Çelik, B., Tetik, N., Kulcan Arslan, A., Gübbük, H. 2017. İt üzümünün (Solanum nigrum) fizikokimyasal özellikleri. Bahçe 46(Özel Sayı 1):291-296.
  • Çetinkaya, Ş., Yılmaz, S., Arı, N., Ünlü, A., Fırat, A.F., Tekşam, İ., Zengin, S., Çelik, İ., Öztop, A., Devran, Z., Kaya, N., Sayın, B., Çelikyurt, M.A., Aktaş, A., 2009. Örtüaltı patlıcan yetiştiriciliği. Batı Akdeniz Araştırma Enstitüsü, Antalya, 104s.
  • Datta, D.R., Yusop, R.M., Misran, A., Jusoh, M., Oladosu, Y., Arolu, F., Haque, A., Sulaiman N.M., 2021. Genetic diversity in eggplant (Solanum melongena L.) germplasm from three secondary geographical origins of diversity using SSR markers, Biocell, 45(5):1393-1401.
  • Daunay, M.C., Lester, R.N., Gebhardt, C.H., Hennart, J.W., Jahn, M., Frary, A., Doganlar, S. 2001. Genetic resources of eggplant (Solanum melongena L.) and allied species:A new challenge for molecular geneticists and eggplant breeders. Solanaceae V. Nijmegen University Press, Nijmegen, The Netherlands, pp:251-274.
  • Daunay, M.C., Hazra, P. 2012. Eggplant, pp:257-322. In:K.V. Peter and P. Hazra (eds.). Handbook of vegetables. Studium Press, Houston, TX.
  • Davidar, P., Snow, A.A., Rajkumar, M., Pasquet, R., Daunay, M.C. Mutegi, E. 2015. The potential for crop to wild hybridization in eggplant (Solanum melongena; Solanaceae) in Southern India. Amer. J. Bot. 102:129-139.
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There are 65 citations in total.

Details

Primary Language Turkish
Subjects Agricultural Engineering (Other)
Journal Section Makaleler
Authors

Edip Alas

Gölgen Bahar Öztekin

Publication Date December 19, 2022
Submission Date January 1, 2022
Acceptance Date January 31, 2022
Published in Issue Year 2022 Volume: 51 Issue: (Özel Sayı 1) 13. Sebze Tarımı Sempozyumu

Cite

APA Alas, E., & Öztekin, G. B. (2022). Bazı Yabani Patlıcan Türlerinin Diyarbakır Koşullarına Adaptasyonunun Belirlenmesi. Bahçe, 51((Özel Sayı 1) 13. Sebze Tarımı Sempozyumu), 8-18.
AMA Alas E, Öztekin GB. Bazı Yabani Patlıcan Türlerinin Diyarbakır Koşullarına Adaptasyonunun Belirlenmesi. Bahçe. December 2022;51((Özel Sayı 1) 13. Sebze Tarımı Sempozyumu):8-18.
Chicago Alas, Edip, and Gölgen Bahar Öztekin. “Bazı Yabani Patlıcan Türlerinin Diyarbakır Koşullarına Adaptasyonunun Belirlenmesi”. Bahçe 51, no. (Özel Sayı 1) 13. Sebze Tarımı Sempozyumu (December 2022): 8-18.
EndNote Alas E, Öztekin GB (December 1, 2022) Bazı Yabani Patlıcan Türlerinin Diyarbakır Koşullarına Adaptasyonunun Belirlenmesi. Bahçe 51 (Özel Sayı 1) 13. Sebze Tarımı Sempozyumu 8–18.
IEEE E. Alas and G. B. Öztekin, “Bazı Yabani Patlıcan Türlerinin Diyarbakır Koşullarına Adaptasyonunun Belirlenmesi”, Bahçe, vol. 51, no. (Özel Sayı 1) 13. Sebze Tarımı Sempozyumu, pp. 8–18, 2022.
ISNAD Alas, Edip - Öztekin, Gölgen Bahar. “Bazı Yabani Patlıcan Türlerinin Diyarbakır Koşullarına Adaptasyonunun Belirlenmesi”. Bahçe 51/(Özel Sayı 1) 13. Sebze Tarımı Sempozyumu (December2022), 8-18.
JAMA Alas E, Öztekin GB. Bazı Yabani Patlıcan Türlerinin Diyarbakır Koşullarına Adaptasyonunun Belirlenmesi. Bahçe. 2022;51:8–18.
MLA Alas, Edip and Gölgen Bahar Öztekin. “Bazı Yabani Patlıcan Türlerinin Diyarbakır Koşullarına Adaptasyonunun Belirlenmesi”. Bahçe, vol. 51, no. (Özel Sayı 1) 13. Sebze Tarımı Sempozyumu, 2022, pp. 8-18.
Vancouver Alas E, Öztekin GB. Bazı Yabani Patlıcan Türlerinin Diyarbakır Koşullarına Adaptasyonunun Belirlenmesi. Bahçe. 2022;51((Özel Sayı 1) 13. Sebze Tarımı Sempozyumu):8-18.

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