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Tuzluluk koşullarına maruz kalan mısır çeşitlerinin (Zea mays L.) bazı büyüme parametreleri üzerinde salisilik asidin iyileştirici etkileri

Yıl 2023, Cilt: 3 Sayı: 2, 255 - 269, 31.12.2023

Öz

Bu çalışmada amaç salisilik asidin tuzluluk stresi seviyelerine maruz kalan mısır çeşitlerinin çimlenmesi ve büyümesi üzerindeki etkilerini değerlendirmektir. Deneme, tesadüf blokları faktöriyel deneme deseni kullanılarak dört tekerrürlü olarak düzenlenmiştir. Bitki materyali olarak mısır (Zea mays L.) çeşitleri (Side, Pehlivan ve Burak) kullanılmıştır. Tuz stresi 0-75-150 mM konsantrasyonlarda NaCl bileşiği ile ve 0-0.1-0.2 mM dozlarda salisilik asit ile hazırlanmıştır. Genel olarak Side çeşidinde elde edilen gelişme parametreleri en yüksek ortalamalar olarak bulunmuştur. Pehlivan çeşidinde minimum ortalamalar belirgin olarak belirtilmiştir. Çimlenme ve gelişim parametreleri, 150 mM NaCl uygulamasında minimum ortalamalar ve tahmin edildiği gibi de kontrolde maksimum ortalamalar ile rapor edilmiştir. Tuzluluğun olumsuz etkisinden dolayı sadece çimlenme süresi 150 mM ile en yüksek ortalamayı vermiştir. En çok etkilenen özelliğin kök uzunluğu olduğu belirlenmiş, 150 mM NaCl kontrole göre üç kat daha düşük elde edilmiştir. SA'nın karmaşık etkisi, en iyi çimlenme süresinin 0,2 mM SA'da elde edilmesi ve en kötü çimlenme süresinin ise 0,1 mM SA'da kaydedilmesi ile açıklanmaktadır. Çimlenme indeksi, artan SA uygulamalarıyla önemli ölçüde ve düzenli olarak etkilenmiştir. Arttırılan SA dozu, sürgün uzunluğunda iyi bir uzamaya neden olmuş, aksine kök uzunluğunda kısalmaya yol açmıştır, ancak bunlar sayısal olarak belirgin bir şekilde farklı olmamıştır. Kontrol uygulamasında kök uzunluğu en iyi olarak sonuçlanmış, ayrıca taze ağırlıkta ise en iyi değer 0,2 mM SA'da kaydedilmiştir. Bu denemede, mısır tohumlarının çimlenme döneminde karşılaşabilecekleri tuzluluk stresi koşullarında salisilik asit uygulamalarının bu etkiyi azalttığı ve poztif etki ettiği belirlenmiştir.

Kaynakça

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  • Anaya F, Fghire R, Wahbi S and Loutfi K (2017). Antioxidant enzymes and physiological traits of Vicia faba L. as affected by salicylic acid under salt stress. J. Mater Environ Sci. 8(7): 2549-2563.
  • Arfan M (2009). Exogenous application of Salicylic acid through rooting medium modulates ion accumulation and antioxidant activity in spring wheat under salt stress. Int. J. Agri. Biol. 11: 437-442.
  • Asaadi A M (2009). Investigation of salinity stress on seed germination of Trigonella foenum-graecum. Res. J. Biol. Sci. 4: 1152–1155
  • Azooz M M (2009). Salt stress mitigation by seed priming with salicylic acid in two faba bean genotypes differing in salt tolerance. Int J Agric Biol. 11(4): 343-350.
  • Banu N A, Hoque A, Watanabe-Sugimoto M, Islam,M M, Uraji M, Matsuoka K, Nakamura Y and Murata Y (2010). Proline and glycinebetaine ameliorated NaCl stress via scavenging of hydrogen peroxide and methylglyoxal but not superoxide or nitric oxide in tobacco cultured cells. Biosci. Biotech. Bioch. 74(10): 2043e2049.
  • Banziger M and Araus J (2007). Recent advances in breeding maize for drought and salinity stress tolerance. Advances in Molecular Breeding Towards Drought and Salt Tolerant Crops. SpringerLink, Berlin, 587-601.
  • Cassaniti C, Romano D, Ho M C and Flowers T J (2013). Growing floricultural crops with brackish water. Environ. Exper. Bot. 92: 165-75.
  • Ceritoglu M. and Erman M (2020). Mitigation of salinity stress on chickpea germination by salicylic acid priming. Uluslar. Tar. ve Yaban Hayatı Bil. Der. 6(3): 582-591.
  • Dempsey D M A and Klessig D F (2017). How does the multifaceted plant hormone salicylic acid combat disease in plants and are similar mechanisms utilized in humans? B.M.C. Biol. 15: 1-11.
  • El-Katony T M, El-Bastawisy Z M and El-Ghareeb S S (2019). Timing of salicylic acid application affects the response of maize (Zea mays L.) hybrids to salinity stress. Heliyon 5(4): e01547.
  • El-Mergawi R A and El-Wahed M S (2020). Effect of exogenous salicylic acid or indole acetic acid on their endogenous levels, germination, and growth in maize. Bull. Nat. Res. Centre 44: 1-8.
  • Farahbakhsh H and Saiid M S (2011). Effects of foliar application of salicylic acid on vegetative growth of maize under saline conditions. Afr. J. Plant Sci. 5: 575-578.
  • Flowers T J (2004). Improving crop salt tolerance. J. Exp. Bot. 55: 307-319.
  • Ghonaim M M, Mohamed H I and Omran A A (2020). Evaluation of wheat salt stress tolerance using physiological parameters and retrotransposon-based markers. Genet. Resour. Crop Evol. 68: 227-242.
  • Gökkaya T H, Arslan M. (2023). Exogenous salicylic acid application during germination of silage maize (Zea mays L.) exposed to PEG-induced drought condition. Turkish Journal of Range and Forage Science 4(1): 43-52.
  • Gunes A, Inal A, Alpaslan M, Eraslan F, Bagci E G and Cicek N (2007). Salicylic acid induced changes on some physiological parameters symptomatic for oxidative stress and mineral nutrition in maize (Zea mays L.) grown under salinity. J. Plant Physiol 164: 728-36.
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  • Gülser F, Gülser C and Gökkaya T H (2019).The effects of selenium application on germination parameters of pumpkin (Cucurbita pepo L.) and osmotic potential of growth media under drought conditions. 10th International Soil Science Congress on "Environment and Soil Resources Conservation". p. 249-255.
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Damage mitigating effects of salicylic acid on some growth parameters of maize cultivars (Zea mays L.) exposed to salinity conditions

Yıl 2023, Cilt: 3 Sayı: 2, 255 - 269, 31.12.2023

Öz

The aim was to evaluate the salicylic acid effects on the germination and growth of maize cultivars exposed to salinity stress levels. The investigation was set according to the factorial experimental design in completely random blocks with four replications. The maize (Zea mays L.) cultivars (Side, Pehlivan and Burak) was chosen as plant material. NaCl compound was used for solutions prepared at concentrations of 0-75-150 mM and and salicylic acid in doses of 0-0.1-0.2 mM. The growth parameters in Side cultivar was naturally higher than the other cultivars. The minimum means prominently were indicated in Pehlivan cultivar. As anticipated, the maximum means were realised in control, as the minors were reported in 150 mM NaCl application. Due to the unfavorable influence of salinity, only the germination time gave the highest average at 150 mM. The most affected feature was determined root length, 150 mM NaCl was three times lower than control. The fact that the best germination time was obtained at 0.2 mM SA, as the worst was recorded at 0.1 mM SA, that explained the complex effect of SA. Germination index impressed substantially and regularly with enhancing SA applications. Augmenting SA dose caused a well elongation in shoot length, moreover by contrast lead to shortening in root length, but these were not numerically markedly different. Albeit, the root length of the control application was well, the best value in fresh weight was recorded at 0.2 mM SA. In this experiment, realised that salicylic acid applications diminished and ameliorate this effect under salinity stress conditions that maize seeds may encounter during the germination period.

Kaynakça

  • AbdElgawad H, Zinta G, Hegab M M, Pandey R, Asard H and Abuelsoud W (2016). High salinity induces different oxidative stress and antioxidant responses in maize seedlings organs. Frontiers in Plant Science 7(3): 276.
  • Afzal I, Basra S M, Farooq M and Nawaz A (2006). Alleviation of salinity stress in spring wheat by hormonal priming with ABA, salicylic acid and ascorbic acid. Int. J. Agric. Biol. 8(1): 23-28.
  • Anaya F, Fghire R, Wahbi S and Loutfi K (2017). Antioxidant enzymes and physiological traits of Vicia faba L. as affected by salicylic acid under salt stress. J. Mater Environ Sci. 8(7): 2549-2563.
  • Arfan M (2009). Exogenous application of Salicylic acid through rooting medium modulates ion accumulation and antioxidant activity in spring wheat under salt stress. Int. J. Agri. Biol. 11: 437-442.
  • Asaadi A M (2009). Investigation of salinity stress on seed germination of Trigonella foenum-graecum. Res. J. Biol. Sci. 4: 1152–1155
  • Azooz M M (2009). Salt stress mitigation by seed priming with salicylic acid in two faba bean genotypes differing in salt tolerance. Int J Agric Biol. 11(4): 343-350.
  • Banu N A, Hoque A, Watanabe-Sugimoto M, Islam,M M, Uraji M, Matsuoka K, Nakamura Y and Murata Y (2010). Proline and glycinebetaine ameliorated NaCl stress via scavenging of hydrogen peroxide and methylglyoxal but not superoxide or nitric oxide in tobacco cultured cells. Biosci. Biotech. Bioch. 74(10): 2043e2049.
  • Banziger M and Araus J (2007). Recent advances in breeding maize for drought and salinity stress tolerance. Advances in Molecular Breeding Towards Drought and Salt Tolerant Crops. SpringerLink, Berlin, 587-601.
  • Cassaniti C, Romano D, Ho M C and Flowers T J (2013). Growing floricultural crops with brackish water. Environ. Exper. Bot. 92: 165-75.
  • Ceritoglu M. and Erman M (2020). Mitigation of salinity stress on chickpea germination by salicylic acid priming. Uluslar. Tar. ve Yaban Hayatı Bil. Der. 6(3): 582-591.
  • Dempsey D M A and Klessig D F (2017). How does the multifaceted plant hormone salicylic acid combat disease in plants and are similar mechanisms utilized in humans? B.M.C. Biol. 15: 1-11.
  • El-Katony T M, El-Bastawisy Z M and El-Ghareeb S S (2019). Timing of salicylic acid application affects the response of maize (Zea mays L.) hybrids to salinity stress. Heliyon 5(4): e01547.
  • El-Mergawi R A and El-Wahed M S (2020). Effect of exogenous salicylic acid or indole acetic acid on their endogenous levels, germination, and growth in maize. Bull. Nat. Res. Centre 44: 1-8.
  • Farahbakhsh H and Saiid M S (2011). Effects of foliar application of salicylic acid on vegetative growth of maize under saline conditions. Afr. J. Plant Sci. 5: 575-578.
  • Flowers T J (2004). Improving crop salt tolerance. J. Exp. Bot. 55: 307-319.
  • Ghonaim M M, Mohamed H I and Omran A A (2020). Evaluation of wheat salt stress tolerance using physiological parameters and retrotransposon-based markers. Genet. Resour. Crop Evol. 68: 227-242.
  • Gökkaya T H, Arslan M. (2023). Exogenous salicylic acid application during germination of silage maize (Zea mays L.) exposed to PEG-induced drought condition. Turkish Journal of Range and Forage Science 4(1): 43-52.
  • Gunes A, Inal A, Alpaslan M, Eraslan F, Bagci E G and Cicek N (2007). Salicylic acid induced changes on some physiological parameters symptomatic for oxidative stress and mineral nutrition in maize (Zea mays L.) grown under salinity. J. Plant Physiol 164: 728-36.
  • Guo X, Zhi W, Feng Y, Zhou G and Zhu G (2022). Seed priming improved salt-stressed sorghum growth by enhancing antioxidative defense. Plos one 17(2): e0263036.
  • Gülser F, Gülser C and Gökkaya T H (2019).The effects of selenium application on germination parameters of pumpkin (Cucurbita pepo L.) and osmotic potential of growth media under drought conditions. 10th International Soil Science Congress on "Environment and Soil Resources Conservation". p. 249-255.
  • Halliwell B (2006). Reactive species and antioxidants. Redox biology is a fundamental them of aerobic life. Plant Physiolog 141: 312–322.
  • Hussein M M, Balbaa L K and Gaballah M S (2007). Salicylic acid and salinity effects on growth of maize plants. Research J. of Agri. and Biol. Sci. 3(4): 321-328.
  • Ibrahim M E H, Zhu X, Zhou G and Nimir N E A (2016). Comparison of germination and seedling characteristics of wheat varieties from China and Sudan under salt stress. Agronomy Journal 108: 85-92.
  • ISTA 2017. International for Seed Testing Rules. International Seed Testing Association, Zurich, Switzerland. Jaleel C A, Kishorekumar A, Manivannan P, Saankar B, Gomathinayagam M and Panneerselvam R (2008). Salt stress mitigation by calcium chloride in Phyllanthus amarus. Acta Bot. Croat. 67: 53–62.
  • Jamil M, Lee D B, Jung K Y, Ashraf M, Lee S C and Rha E S (2006). Effect of salt (NaCl) stress on germination and early seedling growth of four Vegetable species. J. Cent. Eur. Agric. 7: 273-282.
  • Jayakannan M, Bose J, Babourina O, Rengel Z and Shabala S (2015). Salicylic acid in plant salinity stress signalling and tolerance. Plant Growth Regulation 76: 25-40.
  • Jini D and Joseph B (2017). Physiological mechanism of salicylic acid for alleviation of salt stress in rice. Rice Sci. 24 (2): 97e108.
  • Kaya C, Ugurlar F, Ashraf M and Ahmad P. (2023). Salicylic acid interacts with other plant growth regulators and signal molecules in response to stressful environments in plants. Plant Physiol. Biochem. 196: 431–443.
  • Khan M A and Weber D J (2008). Ecophysiology of High Salinity Tolerant Plants (Tasks for Vegetation Science), 1st ed.; Springer Science and Business Media: Amsterdam, The Netherland.
  • Khan M I R, Iqbal N, Masood A and Khan N A (2012a). Variation in salt tolerance of wheat cultivars: Role of glycinebetaine and ethylene. Pedosphere 22: 746-754.
  • Khan N A, Syeed S, Masood A, Nazar R and Iqbal N (2010). Application of salicylic acid increases contents of nutrients and antioxidative metabolism in mungbean and alleviates adverse effects of salinity stress. Int. J. of Plant Bio. 1(1): e1.1-8.
  • Khan S U, Asghari B and Gurmani A R (2012b). Abscisic acid and salicylic acid seed treatment as potent inducer of drought tolerance in wheat (Triticum aestivum L.). Pak. J. Bot. 44(1): 43-49.
  • Khodary S E A (2004). Effect of salicylic acid on the growth, photosynthesis and carbohydrate metabolism in salt stressed maize plants. Int. J. Agric. Biol. 6(1): 5-8.
  • Kudla J, Becker D, Grill E, Hedrich R, Hippler M, Kummer U, Parniske M, Romeis T and Schumacher K (2018). Advances and current challenges in calcium signaling. New Phytol. 218: 414-31.
  • Latif H H and Mohamed H (2016). Exogenous applications of moringa leaf extract effect on retrotransposon, ultrastructural and biochemical contents of common bean plants under environmental stresses. South Afr. J. Bot. 106: 221-231.
  • Lin J, Wang Y, Sun S, Mu C and Ya X (2017). Effects of arbuscular mycorrhizal fungi on the growth, photosynthesis and photosynthetic pigments of Leymus chinensis seedlings under salt-alkali stress and nitrogen deposition. Sci. Total Environ. 576: 234-241.
  • Majda C, Khalid D, Aziz A, Rachid B, Badr A S, Lotfi A and Mohamed B (2019). Nutri-priming as an efficient means to improve the agronomic performance of molybdenum in common bean (Phaseolus vulgaris L.). Science of the Total Environment 661: 654-663.
  • Mansour M M F, Salama K H A, Ali F Z M and Abou Hadid A F (2005). Cell and plant responses to NaCl in Zea mays L. cultivars differing in salt tolerance. Gen. Appl. Plant Physiol. 31(1-2): 29e41.
  • Mittal N, Thakur S, Verma H and Kaur A (2018). Interactive effect of salinity and ascorbic acid on Brassica rapa L. plants. Gl. J. of Bio-Sci. and Biotech. 7: 27-29.
  • Moghaddam S S, Rahimi A, Pourakbar L and Jangjoo F (2020). Seed Priming with salicylic acid improves germination and growth of Lathyrus sativus L. under salinity stress. Yuzuncu Yil Uni. Journal of Agricultural Sciences 30(1): 68-79.
  • Mohamed H I and Gomaa E Z (2012). Effect of plant growth promoting Bacillus subtilis and Pseudomonas fluorescens on growth and pigment composition of radish plants (Raphanus sativus) under NaCl stress. Photosynt 50(2): 263–272. https://doi.org/10.1007/s11099- 012-0032-8.
  • Mohammed Ibrahim Elsiddig A, Zhou G, Nimir N E A and Yousif Adam Ali A (2022). Effect of exogenous ascorbic acid on two sorghum varieties under different types of salt stress. Chilean journal of agricultural research 82(1): 10-20.
  • Munns R and Tester M (2008). Mechanisms of salinity tolerance. Annual Reviews of Plant Biology 59: 651-681.
  • Nawaz F, Ashraf M Y, Ahmad R, Waraich E A and Shabbir R N (2014). Selenium (Se) regulates seedling growth in wheat under drought stress. Hindawi Publishing Corporation. Advances in Chemistry, Article ID 143567, 7p.
  • Nazar R, Iqbal N, Syeed S and Khan N A (2011). Salicylic acid alleviates decreases in photosynthesis under salt stress by enhancing nitrogen and sulfur assimilation and antioxidant metabolism differentially in two mungbean cultivars. Journal of plant physiology 168(8): 807-815.
  • Niu G, Rodriguez , Dever J and Zhang J (2013). Growth and physiological responses of five cotton genotypes to sodium chloride and sodium sulfate saline water irrigation. J. Cotton Sci. 17(2): 233–244.
  • Noreen S and Ashraf M (2008). Alleviation of adverse effects of sunflower (Helianthus annus L.) by exogenous application of salicylic acid growth and photosynthesis. Pak. J. Bot. 40(4): 1657-1663
  • Öten M, Kiremitçi S and Çınar O (2016). Bazı yem bitkileri ve karışımlarıyla hazırlanan silajların silaj kalitelerinin farklı yöntemlerle belirlenmesi. And. Ege Tar. Araş. Ens. Der. 26(2): 33-43.
  • Purcarea C and Cachita-Cosm D (2010). Studies regarding the effects of salicylic acid on maize (Zea mays L.) seedling under salt stress. Studia Universitat, Seria Tiintele Vietii 1: 63-68.
  • Rajabi Dehnavi A, Zahedi M, Ludwiczak A, Cardenas Perez S and Piernik A (2020). Effect of salinity on seed germination and seedling development of sorghum (Sorghum bicolor (L.) Moench) genotypes. Agronomy 10(6): 859.
  • Raskin I (1992). Role of salicylic acid in plants. Ann. Rev. of Plant Physiol. Mol. Boil. 43: 439- 463.
  • Rehman S, Harris P J C, Bourne W F and Wilkin J (2000). The relationship between ions; vigour and salinity tolerance of Acacia seeds. Plant Soil 220: 229-233.
  • Ren H, Wang X, Zhang F, Zhao K, Liu X, Yuan R, ... and Wang J. (2023). Salicylic acid and pyraclostrobin can mitigate salinity stress and improve anti-oxidative enzyme activities, photosynthesis, and soybean production under saline–alkali regions. Land 12(7): 1319.
  • Rivas-San Vicente M and Plasencia J (2011). Salicylic acid beyond defence: its role in plant growth and development. J. of Experimental Botany 62(10): 3321-3338.
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  • Semida W M, Abd El-Mageed T A, Mohamed S E and El-Sawah N A (2017). Combined effect of deficit irrigation and foliar applied salicylic acid on physiological responses, yield, and water-use efficiency of onion plants in saline calcareous soil. Archives of Agronomy and Soil Science 63(9): 1227-1239.
  • Shtaya M J, Al-Fares H, Qubbaj T, Abu-Qaoud H and Shraim F (2021). Influence of salt stress on seed germination and agromorphological traits in chickpea (Cicer arietinum L.). Legume Research-An International Journal 44(12): 1455-1459.
  • Singh P K, Shahi S K and Singh A P (2015). Effects of salt stress on physico-chemical changes in maize (Zea mays L.) plants in response to salicylic acid. Indian J. Plant Sci. 4: 2319-3824.
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  • Sultan I, Khan I, Chattha M U, Hassan M U, Barbanti L, Calone R, .. and Usman S (2021). Improved salinity tolerance in early growth stage of maize through salicylic acid foliar application. Italian Journal of Agronomy 16(3): 1-11.
  • Tenikecier H S and Ateş E (2022). Impact of salinity on germination and seedling growth of four cool-season turfgrass species and cultivars. Polish Journal of Environmental Studies. 31(2): 1813-1821.
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  • Tufail A, Arfan M, Gurmani A R, Khan A and Bano A (2013). Salicylic acid induced salinity tolerance in maize (Zea mays). Pak. J. Bot. 45(S1), 75-82.
  • TUIK 2023. https://data.tuik.gov.tr/Bulten/Index?p=Bitkisel-Uretim-Istatistikleri-2022-45504#:~:text=Bir%20%C3%B6nceki%20y%C4%B1la%20g%C3%B6re%2C%20bu%C4%9Fday,artarak%20365%20bin%20ton%20oldu.
  • Tuna A L, Kaya C, Dikilitaş M, Yokaş İ, Burun B and Altunl H (2007). Comparative effects of various salicylic acid derivatives on key growth parameters and some enzyme activities in salinity stressed maize (Zea mays L.) plants. Pak. J. Bot. 39(3):787-798.
  • Vazirimehr M, Rigi K and Branch Z (2014). Effect of salicylic acid in agriculture. International Journal of Plant, Animal and Environmental Sciences 4: 291e296
  • Wang Y H, Zhang G, Chen Y, Gao J, Sun Y R, Sun M F, et al. (2019). Exogenous application of gibberellic acid and ascorbic acid improved tolerance of okra seedlings to NaCl stress. Acta Physiologiae Plantarum 41:93.
  • Xia F S, Wang Y C, Zhu H S, Ma J Y, Yang Y Y, Tian R and Dong K H (2019). Influence of priming with exogenous boron on the seed vigour of alfalfa (Medicago sativa L.). Legume Research-an International Journal 42(6): 795-799.
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  • Yamaguchi T and Blumwald E (2005). Developing salt-tolerant crop plants: Challenges and opportunities. Trends Plant Sci. 12: 615–620.
  • Yıldız M, Terzi H and Akçalı N (2014). Bitki Tuz Stresi Toleransında Salisilik Asit ve Poliaminler. Afyon Kocatepe Uni. J. of Science and Engineering 14(2): 7-22.
Toplam 73 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Agronomi
Bölüm Araştırma Makaleleri
Yazarlar

Tuğba Hasibe Gökkaya 0000-0001-5956-0764

Mehmet Arslan 0000-0002-2197-4969

Yayımlanma Tarihi 31 Aralık 2023
Yayımlandığı Sayı Yıl 2023 Cilt: 3 Sayı: 2

Kaynak Göster

APA Gökkaya, T. H., & Arslan, M. (2023). Damage mitigating effects of salicylic acid on some growth parameters of maize cultivars (Zea mays L.) exposed to salinity conditions. Kırşehir Ahi Evran Üniversitesi Ziraat Fakültesi Dergisi, 3(2), 255-269.
AMA Gökkaya TH, Arslan M. Damage mitigating effects of salicylic acid on some growth parameters of maize cultivars (Zea mays L.) exposed to salinity conditions. KUZFAD. Aralık 2023;3(2):255-269.
Chicago Gökkaya, Tuğba Hasibe, ve Mehmet Arslan. “Damage Mitigating Effects of Salicylic Acid on Some Growth Parameters of Maize Cultivars (Zea Mays L.) Exposed to Salinity Conditions”. Kırşehir Ahi Evran Üniversitesi Ziraat Fakültesi Dergisi 3, sy. 2 (Aralık 2023): 255-69.
EndNote Gökkaya TH, Arslan M (01 Aralık 2023) Damage mitigating effects of salicylic acid on some growth parameters of maize cultivars (Zea mays L.) exposed to salinity conditions. Kırşehir Ahi Evran Üniversitesi Ziraat Fakültesi Dergisi 3 2 255–269.
IEEE T. H. Gökkaya ve M. Arslan, “Damage mitigating effects of salicylic acid on some growth parameters of maize cultivars (Zea mays L.) exposed to salinity conditions”, KUZFAD, c. 3, sy. 2, ss. 255–269, 2023.
ISNAD Gökkaya, Tuğba Hasibe - Arslan, Mehmet. “Damage Mitigating Effects of Salicylic Acid on Some Growth Parameters of Maize Cultivars (Zea Mays L.) Exposed to Salinity Conditions”. Kırşehir Ahi Evran Üniversitesi Ziraat Fakültesi Dergisi 3/2 (Aralık 2023), 255-269.
JAMA Gökkaya TH, Arslan M. Damage mitigating effects of salicylic acid on some growth parameters of maize cultivars (Zea mays L.) exposed to salinity conditions. KUZFAD. 2023;3:255–269.
MLA Gökkaya, Tuğba Hasibe ve Mehmet Arslan. “Damage Mitigating Effects of Salicylic Acid on Some Growth Parameters of Maize Cultivars (Zea Mays L.) Exposed to Salinity Conditions”. Kırşehir Ahi Evran Üniversitesi Ziraat Fakültesi Dergisi, c. 3, sy. 2, 2023, ss. 255-69.
Vancouver Gökkaya TH, Arslan M. Damage mitigating effects of salicylic acid on some growth parameters of maize cultivars (Zea mays L.) exposed to salinity conditions. KUZFAD. 2023;3(2):255-69.