Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress

Yıl: 2022 Cilt: 36 Sayı: 1 Sayfa Aralığı: 75 - 81 Metin Dili: İngilizce DOI: 10.15316/SJAFS.2022.011 İndeks Tarihi: 24-06-2022

Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress

Öz:
Salinity, which is one of the abiotic stresses, has become an important obstacle in agricultural areas. The use of humic acids (HA) as a biostimulant is increasing day by day and it is tried to increase the resistance of plants against stress. In this study, the effects of HA application of 0-15ml $L^{-1}$ (4 concentrations) on the resistance to salt (S) 0-150 mM $L^{-1}$ (4 concentrations) stress in 3 sunflower cultivars (Maximus (C1), Sirena (C2), Reyna (C3) were investigated under laboratory conditions. In the study; germination percentage (GP), mean germination time (MGT), salt tolerance percentage (STP), seeding length (SL), root length (RL), relative water content (RWC), real water content (GSI), total chlorophyll (Chl), chlorophyll stability index (CSI) parameters were examined. As a result of the study, HA applications played a role in reducing the negative effects of salt stress on the examined parameters. It was concluded that HA can be evaluated as an effective material that can be used to increase resistance and tolerance of plants against salt stress.
Anahtar Kelime:

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • Akladious SA, Mohamed H (2018). Ameliorative effects of calcium nitrate and humic acid on the growth, yield component and biochemical attribute of pepper (Capsicum annuum) plants grown under salt stress. Scientia Horticulturae 236 244-250 https://doi.org/10.1016/j.scienta.2018.03.047.
  • Alharby HF, Hasanuzzaman M, Al-Zahrani HS, Hakeem KR (2021). Exogenous selenium mitigates salt stress in soybean by ımproving growth, physiology, glutathione home- ostasis and antioxidant defense. Phyton-International Journal of Experimental Botany. 90 (2) http://dx.doi.org/10.32604/phyton.2021.013657.
  • Arslan Ö (2018). Determination of photosynthetic activities of C3 and C4 plants exposed to water deficit. Journal of the Institute of Science and Technology 8(4): 47-54.
  • Barekati F, Hervan EM, Rad ASS, Mohamedi GN (2019). Effect of sowing date and humic acid foliar application on yield and yield components of canola cultivars. Journal of Agricultural Sciences (25)70-78, DOI: 10.15832/ankutbd.539003.
  • Bell JC, Bound SA, Buntain M (2022). Biostimulants in agricultural and horticultural production. (Editor Warrington I.) Horticultural Reviews Volume49. https://doi.org/10.1002/9781119851981.ch2
  • Beyaz R, Gürsoy M, Aycan M, Yıldız M (2018). the effect of boron on the morphological and physıological responses of sunflower seedlings (Helianthus annuus L.). Fresenius Environmental Bulletin 27(5A):3554-3560.
  • Boucelha L, Abrous-Belbachır O, Djebbar R (2019). Seed priming: benefıts and mechanisms. 9th International Conference on Biotechnology and Environmental Management (ICBEM 2019).
  • Bulut H (2020). Effect of humic acid against salt stress in maize (Zea mays L.). Manas Journal of Agriculture Veterinary and Life Science10(1):11-18.
  • Du Jardin P (2015). Plant bio-stimulants: Definition, concept, main categories and regulation. Sci. Hortic.,196,3–14.
  • Ebrahimi M, Miri E (2016). Effect of humic acid on seed germination and seedling growth of Borago officinalis and Cichorium intybus. Ecopersia, 4 (1), 1239-1249.
  • El-Ghamry AM, Abd El-Hadi KM, Ghoneem KM (2009). Amino and humic acids promote growth, yield and disease resistance of faba bean cultivated in clayey soil. Aust. J. Basic Appl. Sci., 3(2):731–739.
  • Frioni TJ. VanderWeide A, Palliotti. S. Tombesi, S. Poni, P. Sabbatini. 2021. Foliar vs. soil application of Ascophyllum nodosum extracts to improve grapevine water stress tolerance. Scientia Horticulturae 277 109807 https://doi.org/10.1016/j.scienta.2020.109807.
  • Gontia-Mishra I, Sasidharan S, Tiwari S (2014). Recent developments in use of 1-aminocyclopropane-1carboxylate (ACC) deaminase for conferring tolerance to biotic and abiotic stress. Biotechnol Lett., 36:889-898. DOI 10.1007/s10529-014-1458-9.
  • Gürsoy M, Nofouzı F, Başalma D (2016). Humik asit uygulama zamanı ve dozlarının kışlık kolzada verim ve verim öğelerine etkileri. Tarla Bitkileri Merkez Araştırma Enstitüsü Dergisi 25(Özel sayı-2): 131-136.
  • Gürsoy M, Kolsarıcı Ö (2017). Ankara koşullarında leonarditle kaplanmış toprakta yazlık kolza (Brassica napus ssp. oleifera L.)’ya uygulanan farklı humik asit dozlarının verim ve verim ögelerine etkilerinin belirlenmesi. KSÜ Doğa Bil. Derg., 20(Özel Sayı): 186-191, DOI:10.18016/ksudobil.349192.
  • Gürsoy M (2020). Effect of chitosan pretreatment on seedling growth and antioxidant enzyme activity of safflower (Carthamus tinctorius L.) cultivars under saline conditions. Applied Ecology and Environmental Research 18(5):6589-6603.Doi: http://dx.doi.org/10.15666/aeer/1805_65896603
  • Gürsoy M (2022). Effect of salicylic acid pretreatment on seedling growth and antioxidant enzyme activıties of sunflower (Helianthus annuus L.) and linseed (Linum usitatissimum L.) plants in salinity conditions. Romanian Agricultural Research 39:1-8.
  • Hernández JA (2019). Salinity tolerance in plants: Trends and perspectives. Int. J. Mol. Sci., 20: 2408.
  • ISTA (2003). International rules for seed testing. ınternational seed testing association, Bassersdorf, Switzerland.
  • Kahraman A (2017). Effect of humic acid doses on yield and quality parameters of cowpea [Vigna unguiculata (L.) Walp] cultivars. Legume Research (40):155-159.
  • Karimian Z, Samiei L, Nabati J (2019). Alleviating the salt stress effects in Salvia splendens by humic acid application. Acta Sci. Pol. Hortorum Cultus 18(5):73–82. DOI: 10.24326/asphc.2019.5.7.
  • Lichtenthaler HK, Wellburn AR (1983). Determinations of total careteonids and chlorophylls a and b of leaf extracts in different solvents. Biomchem. Soc. Transac., 11: 591-592.
  • Mohan MM, Narayanan SL, Ibrahim SM (2000). Chlorophyll stability index (CSI): ıts ımpact on salt tolerance in rice. Crop Management and Physiology.
  • Orchard TJ (1977). Estimating the parameters of plant seedling emergence. Seed Science 5(1):61-69.
  • Ritchie SW, Nguyen HT, Haloday AS (1990). Leaf water content and gas exchange parameters of two wheat genotypes differing in drought resistance. Crop Science 30:105-111.
  • Saidimoradi D, Ghaderia N, Javadia T (2019). Salinity stress mitigation by humic acid application in strawberry (Fragaria x ananassa Duch.). Scientia Horticulturae 256 108594 https://doi.org/10.1016/j.scienta.2019.108594
  • Shahzad K, Hussain S, Arfan M, Hussain S, Waraich EA, Zamir S, Saddique M, Rauf A, Kamal KY, Hano C, El-Esawi MA (2021). Exogenously applied gibberellic acid enhances growth and salinity stress tolerance of maize through modulating the morpho-physiological, biochemical and molecular attributes. Biomolecules 11: 1005. https://doi.org/10.3390/biom1107 1005.
  • Siddiqi E, Ashraf M, Aisha AN (2007). Variation in seed germination and seedling growth in some diverse line of safflower (Carthamus tinctorius L.) under salt stress. Pak J Bot., 39:1937-1944.
  • Sofi A, Ebrahimi M, Shirmohammadi E (2018). Effect of humic acid on germination, growth, and photosynthetic pigments of Medicago sativa L. under salt stress. Ecopersia 6(1):21-30.
  • Tunçtürk M, Tunçtürk R, Oral E, Baran İ (2020). Effect of humic acid on reducing salt (NaCl) stress in broad bean (Vicia faba L.). Journal of the Institute of Science and Technology 10(3): 2168-2179. DOI: 10.21597/jist.709665.
  • Uzun Kayıs S, Ceyhan E (2015). Salinity tolerance during germination and seedling growth of some lentil (Lens culinaris Medic.) cultivars. Selcuk J Agr Food Sci., 29(1):15- 24.
APA Gürsoy M (2022). Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress. , 75 - 81. 10.15316/SJAFS.2022.011
Chicago Gürsoy Mehtap Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress. (2022): 75 - 81. 10.15316/SJAFS.2022.011
MLA Gürsoy Mehtap Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress. , 2022, ss.75 - 81. 10.15316/SJAFS.2022.011
AMA Gürsoy M Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress. . 2022; 75 - 81. 10.15316/SJAFS.2022.011
Vancouver Gürsoy M Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress. . 2022; 75 - 81. 10.15316/SJAFS.2022.011
IEEE Gürsoy M "Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress." , ss.75 - 81, 2022. 10.15316/SJAFS.2022.011
ISNAD Gürsoy, Mehtap. "Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress". (2022), 75-81. https://doi.org/10.15316/SJAFS.2022.011
APA Gürsoy M (2022). Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress. Selcuk Journal of Agriculture and Food Sciences, 36(1), 75 - 81. 10.15316/SJAFS.2022.011
Chicago Gürsoy Mehtap Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress. Selcuk Journal of Agriculture and Food Sciences 36, no.1 (2022): 75 - 81. 10.15316/SJAFS.2022.011
MLA Gürsoy Mehtap Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress. Selcuk Journal of Agriculture and Food Sciences, vol.36, no.1, 2022, ss.75 - 81. 10.15316/SJAFS.2022.011
AMA Gürsoy M Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress. Selcuk Journal of Agriculture and Food Sciences. 2022; 36(1): 75 - 81. 10.15316/SJAFS.2022.011
Vancouver Gürsoy M Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress. Selcuk Journal of Agriculture and Food Sciences. 2022; 36(1): 75 - 81. 10.15316/SJAFS.2022.011
IEEE Gürsoy M "Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress." Selcuk Journal of Agriculture and Food Sciences, 36, ss.75 - 81, 2022. 10.15316/SJAFS.2022.011
ISNAD Gürsoy, Mehtap. "Role of Biostimulant Priming Applications on Germination, Growth and Chlorophyll Content of Sunflower (Helianthus annuus L.) Cultivars under Salinity Stress". Selcuk Journal of Agriculture and Food Sciences 36/1 (2022), 75-81. https://doi.org/10.15316/SJAFS.2022.011