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Effect of drought stress on agro-morphological traits in sunflower (Helianthus annuus L.) genotypes and identification of informative ISSR markers

Published online by Cambridge University Press:  25 March 2020

S. P. Darbani*
Affiliation:
Department of Agronomy and Plant Breeding, College of Agriculture, Islamic Azad University, Ilam Branch, Ilam, Iran
A. A. Mehrabi
Affiliation:
Department of Agronomy and Plant Breeding, College of Agriculture, Islamic Azad University, Ilam Branch, Ilam, Iran
S. S. Pordad
Affiliation:
Dryland Agricultural Research Institute, Agricultural Research, Education and Extension Organization (AREEO), Tehran, Iran, Iran
A. Maleki
Affiliation:
Department of Agronomy and Plant Breeding, College of Agriculture, Islamic Azad University, Ilam Branch, Ilam, Iran
M. Farshadfar
Affiliation:
Department of Agronomy and Plant Breeding, College of Agriculture, Payam Noor University, Kermanshah Branch, Kermanshah, Iran
*
*Corresponding author. E-mail: poriyadarbani@yahoo.com

Abstract

The aims of the current study were to investigate the effect of drought stress on phenological and morphological traits of sunflower genotypes and to determine the important traits for identifying drought-tolerant and drought-sensitive cultivars. For this purpose, a lattice square-design experiment was conducted with 64 sunflower genotypes in an 8 × 8 pattern with two replications under non-stress and moisture-stress conditions (irrigation holding at the flowering stage) during 2 years 2016 and 2017. Measured and recorded traits were included the some phenological and morphological traits seeds. Sil-96 genotype showed the highest yield under both non-stress and moisture-stress conditions. Among the morphological traits, the head and stem diameters were highly significant to determine the final yield. In comparing the genotypes, it was concluded that the number of seeds per head was the most influential component affecting the yield. Furthermore, 1000-seed weight was the most important factor affecting grain yield under moisture-stress conditions. The result of association analysis study shows that 45 of inter-simple sequence repeat markers in a general linear model are associated with yield and yield component traits and 23 of them were verified in a mixed linear model (MLM) association approach. Also, 32 markers were informative for morpho-physiological traits and 24 of them verified using the MLM. Finally, 19 informative markers were identified for phenological traits and 10 of them were verified by the MLM.

Type
Research Article
Copyright
Copyright © NIAB 2020

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References

Ali, Q, Ashraf, M and Anwar, F (2009) Physico-chemical attributes of seed oil from drought stressed sunflower (Helianthus annuus L.) plants. Grasas y Aceites 60: 477483. https://doi.org/10.3989/gya.021009.Google Scholar
Ali, A, Ahmad, A, Khaliq, T, Ali, A and Ahmad, M (2013) Nitrogen nutrition and planting density effects on sunflower growth and yield: a review. Pakistan Journal of Nutrition 12: 10241035.Google Scholar
Anastasi, U, Santonoceto, C, Giuffrè, AM, Sortino, O, Gresta, F and Abbate, V (2010) Yield performance and seed lipid composition of standard and oleic sunflower as affected by water supply. Field Crops Research 119: 145153. https://doi.org/10.1016/j.fcr.2010.07.001.CrossRefGoogle Scholar
Andrade, FH and Ferreiro, MA (1996) Reproductive growth of maize, sunflower and soybean at different source levels during seed filling. Field Crops Research 48: 155165. https://doi.org/10.1016/S0378-4290(96)01017-9.CrossRefGoogle Scholar
Awais Khan, K and Korban, SK (2012) Association mapping in forest trees and fruit crops. Journal of Experimental Botany 63: 40454060. https://doi.org/10.1093/jxb/ers105.CrossRefGoogle ScholarPubMed
Babaeian, M, Tavassoli, A, Ghanbari, A, Esmaeilian, Y and Fahimifard, M (2011) Effects of foliar micronutrient application on osmotic adjustments, seed yield and yield components in sunflower (Alstar cultivar) under water stress at three stages. African Journal of Agricultural Research 6: 12041208. https://doi.org/10.5897/AJAR10.928.Google Scholar
Bajji, M, Lutts, S and Kinet, JM (2001) Water deficit effects on solute contribution to osmotic adjustment as a function of leaf ageing in three durum wheat (Triticum durum Desf.) cultivars performing differently in arid conditions. Plant Science 160: 669681. https://doi.org/10.1016/S0168-9452(00)00443-X.CrossRefGoogle ScholarPubMed
Bayoumi, TY, Eid, MH and Metwali, EM (2008) Application of physiological and biochemical indices as a screening technique for drought tolerance in wheat genotypes. African Journal of Biotechnology 7. http://www.academicjournals.org/AJB.Google Scholar
Benlloch-González, M, Quintero, JM, García-Mateo, MJ, Fournier, JM and Benlloch, M (2015) Effect of water stress and subsequent re-watering on K+ and water flows in sunflower roots. A possible mechanism to tolerate water stress. Environmental and Experimental Botany 118: 7884. https://doi.org/10.1016/j.envexpbot.2015.06.008.CrossRefGoogle Scholar
Blum, A, Golan, G, Mayer, J and Sinmena, B (1997) The effect of dwarfing genes on sorghum seed filling from remobilized stem reserves, under stress. Field Crops Research 52: 4354. https://doi.org/10.1016/S0378-4290(96)03462-4.CrossRefGoogle Scholar
Bornet, BC, Muller, FP and Branchard, M (2002) Highly informative nature of inter simple sequence repeat (ISSR) sequences amplified using tri- and tetra-nucleotide primers from DNA of cauliflower (Brassica oleracea var. botrytus L.). Genome 45:890896. https://doi.org/10.1139/g02-061.CrossRefGoogle Scholar
Bradbury, PJ, Zhang, Z, Kroon, DE, Casstevens, TM and Ramdoss, Y (2007) Buckler ES TASSEL: software for association mapping of complex traits in diverse samples. Bioinformatics (Oxford, England) 23: 26332635. https://doi.org/10.1093/bioinformatics/btm308.CrossRefGoogle ScholarPubMed
Buriro, M, Sanjrani, AS, Chachar, QI, Chachar, NA, Chachar, SD, Buriro, B, Gandahi, AW and Mangan, T (2015) Effect of water stress on growth and yield of sunflower. Journal of Agricultural Technology 11: 15471563. http://www.ijat-aatsea.com/pdf/v11_n7.Google Scholar
Chimenti, CA, Pearson, J and Hall, AJ (2002) Osmotic adjustment and yield maintenance under drought in sunflower. Field Crops Research 75: 235246. https://doi.org/10.1016/S0378-4290(02)00029-1.CrossRefGoogle Scholar
Collard, BCY, Jahufer, MZZ, Brouwer, JB and Pang, ECK (2005) An introduction to markers, quantitative trait loci (QTL) mapping and marker-assisted selection for crop improvement. The basic concepts. Euphytica 142: 169196. https://DOI:10.1007/s10681-005-1681-5.CrossRefGoogle Scholar
Dagdelen, N, Yilmaz, E, Sezgin, F and Gurbuz, T (2006) Water-yield relation and water use efficiency cotton (Gossypium hirsutum L.) and second crop corn (Zea mays L.) in western Turkey. Agricultural Water Management 82: 6385. https://doi.org/10.1016/j.agwat.2005.05.006.CrossRefGoogle Scholar
d'Andria, R, Chiarandà, FQ, Magliulo, V and Mori, M (1995) Yield and soil water uptake of sunflower sown in spring and summer. Agronomy Journal 87: 11221128.CrossRefGoogle Scholar
Darvishzadeh, R, Maleki, HH and Sarrafi, A (2011) Path analysis of the relationships between yield and some related traits in diallel population of sunflower (Helianthus annuus L.) under well-watered and water-stressed conditions. Australian Journal of Crop Science 5: 674. <https://search.informit.com.au/documentSummary;dn=281912150560452;res=IELHSS>Google Scholar
De Vienne, D (2003) Molecular Markers in Plants Genetics and Biotechnology. Enfield, NH, USA, and Plymouth, UK: Science Publishers Inc. https://www.crcpress.com/Molecular-Markers-in-Plant-Genetics-and-Biotechnology/Vienne/p/book.CrossRefGoogle Scholar
Dickinson, CE and Dodd, JL (1976) Phenological pattern in the shortgrass prairie. American Midland Naturalist: 367378. https://DOI:10.2307/2424076.CrossRefGoogle Scholar
Doyle, JJ and Doyle, JL (1987) A rapid DNA isolation procedure for small quantities of fresh leaf tissue. Phytochemical Bulletin 19: 1115. http://phytofura/phytoweb/protocols/lDoylemethod.Google Scholar
Elsheikh, ERA, Schultz, B, Adam, HS and Mehari Haile, A (2015) Crop water productivity for sunflower under different irrigation regimes and plant spacing in Gezira Scheme, Sudan. Journal of Agriculture and Environment for International Development (JAEID), 109, 221233. https://doi.org/10.12895/jaeid.20152.346.Google Scholar
Farahvash, F, Mirshekari, B and Seyahjani, EA (2011) Effects of water deficit on some traits of three sunflower cultivars. Middle-East Journal of Scientific Research 9: 584587. https://www.idosi.org/mejsr/mejsr9(5)11/4.pdf.Google Scholar
Farooq, M, Hussain, M, Wahid, A and Siddique, KHM (2012) Drought stress in plants: an overview. In: Plant Responses to Drought Stress. Berlin, Heidelberg: Springer, pp. 133. https://DOI:10.1007/978-3-642-32653-0_1.Google Scholar
Flagella, Z, Rotunno, T, Tarantino, E, Di Caterina, R and De Caro, A (2002) Changes in seed yield and oil fatty acid composition of high oleic sunflower (Helianthus annuus L.) hybrids in relation to the sowing date and the water regime. European Journal of Agronomy 17: 221230. https://doi.org/10.1016/S1161-0301(02)00012-6.CrossRefGoogle Scholar
Fusari, CM., Rienzo, JAD, Troglia, C, Nishinakamasu, V, Moreno, MV, Maringolo, C, Quiroz, F, lvarez, D, Escande, A, Hopp, E, Heinz, R, Lia, VV and Paniego, NB (2012) Association mapping in sunflower for Sclerotinia head rot resistance. BMC Plant Biology 12: 113. https://doi: 10.1186/1471-2229-12-93.CrossRefGoogle ScholarPubMed
García-López, J, Lorite, IJ, García-Ruiz, R and Domínguez, J (2014) Evaluation of three simulation approaches for assessing yield of rainfed sunflower in a Mediterranean environment for climate change impact modelling. Climatic Change 124: 147162. https://DOI : 10.1007/s10584-014-1067-6.CrossRefGoogle Scholar
Ghaffari, M., Toorchi, M., Valizadeh, M and Shakiba, MR (2012) Morpho-physiological screening of sunflower inbred lines under drought stress condition. Turkish Journal of Field Crops 17: 185190. https://dergipark.org.tr/en/pub/tjfc/issue/17123/179068.Google Scholar
Ghobadi, M, Taherabadi, S, Ghobadi, ME, Mohammadi, GR and Jalali-Honarmand, S (2013) Antioxidant capacity, photosynthetic characteristics and water relations of sunflower (Helianthus annuus L.) cultivars in response to drought stress. Industrial Crops and Products 50: 2938. https://doi.org/10.1016/j.indcrop.2013.07.009.CrossRefGoogle Scholar
Göksoy, AT, Demir, AO, Turan, ZM and Dağüstü, N (2004) Responses of sunflower (Helianthus annuus L.) to full and limited irrigation at different growth stages. Field Crops Research 87: 167178. https://doi.org/10.1016/j.fcr.2003.11.004.CrossRefGoogle Scholar
Gupta, SK (2015) Breeding Oilseed Crops for Sustainable Production: Opportunities and Constraints. Academic Press. https://www.elsevier.com/books/breeding-oilseed-crops-for-sustainable-production.Google Scholar
Hammad, M, Tahir, N, Imran, M and Hussain, MK (2002) Evaluation of sunflower (Helianthus annuus L.) inbred lines for drought tolerance. International Journal of Agriculture and Biology: 398400. https://www.researchgate.net/profile/Muhammad_Tahir37/publication.Google Scholar
Hussain, M, Malik, MA, Farooq, M, Ashraf, MY and Cheema, MA (2008) Improving drought tolerance by exogenous application of glycine betaine and salicylic acid in sunflower. Journal of Agronomy and Crop Science 194: 193199. https://doi.org/10.1111/j.1439-037X.2008.00305.x.CrossRefGoogle Scholar
Hussain, M, Malik, MA, Farooq, M, Khan, MB, Akram, M and Saleem, MF (2009) Exogenous glycine betaine and salicylic acid application improves water relations, allometry and quality of hybrid sunflower under water deficit conditions. Journal of Agronomy and Crop Science 195: 98109. https://doi.org/10.1111/j.1439-037X.2008.00354.x.CrossRefGoogle Scholar
Hussain, S, Saleem, MF, Ashraf, MY, Cheema, MA and Haq, MA (2010) Abscisic acid, a stress hormone helps in improving water relations and yield of sunflower (Helianthus annuus L.) hybrids under drought. Pakistan Journal of Botany 42: 21772189. http://www.pakbs.org/pjbot/.Google Scholar
Hussain, S, Saleem, MF, Iqbal, J, Ibrahim, M, Ahmad, M, Nadeem, SM, Ali, A and Atta, S (2015) Abscisic acid mediated biochemical changes in sunflower (Helianthus annuus L.) grown under drought and well-watered field conditions. The Journal of Animal and Plant Sciences 25: 406416. http://www.thejaps.org.pk/docs/v-25-02/13.pdf.Google Scholar
Ion, V, Dicu, G, Basa, AG, Dumbrava, M, Temocico, G, Epure, LI and State, D (2015) Sunflower yield and yield components under different sowing conditions. Agriculture and Agricultural Science Procedia 6: 4451. https://doi.org/10.1016/j.aaspro.2015.08.036.CrossRefGoogle Scholar
Jaleel, CA, Manivannan, P, Wahid, A, Farooq, M, Al-Juburi, HJ, Somasundaram, R and Panneerselvam, R (2009) Drought stress in plants: a review on morphological characteristics and pigments composition. International Journal of Agricultural Biology 11: 100105. http://doi=10.1.1.323.1932&rep=rep1&type=pdf.Google Scholar
Joshi, SP, Gupta, VS, Aggarwal, RK, Ranjekar, PK and Brar, DS (2000) Genetic diversity and phylogenetic relationship as revealed by inter simple sequence repeat (ISSR) polymorphism in the genus Oryza. Theoretical Applied Genetics 100: 13111320. https://link.springer.com/article/10.1007/s001220051440.CrossRefGoogle Scholar
Karam, F, Lahoud, R, Masaad, R, Kabalan, R, Breidi, J, Chalita, C and Rouphael, Y (2007) Evapotranspiration, seed yield and water use efficiency of drip irrigated sunflower under full and deficit irrigation conditions. Agricultural Water Management 90: 213223. http://0-search.ebscohost.com.catalog.library.colostate.edu.CrossRefGoogle Scholar
Lemon, J. (2007) Nitrogen management for wheat protein and yield in the Esperance port zone. Department of Agriculture and Food, Western Australia, Perth. Bulletin 4707. https://researchlibrary.agric.wa.gov.au/bulletins/78/.Google Scholar
Link, SO, Gee, GW and Downs, JL (1990) The effect of water stress on phenological and ecophysiological characteristics of cheat grass and Sandberg's bluegrass. Journal of Range Management: 506513. https://DOI:10.2307/4002354.CrossRefGoogle Scholar
Lisar, SY, Motafakkerazad, R, Hossain, MM and Rahman, IM (2012) Water stress in plants: causes, effects and responses. In: Water Stress. In Tech. https://DOI:10.5772/39363.Google Scholar
Lopez, FB, Johansen, C and Chauhan, YS (1994) Limitations to seed yield in short-duration pigeon pea under water stress. Field Crops Research 36: 95102. https://doi.org/10.1016/0378-4290(94)90058-2.CrossRefGoogle Scholar
Lyakh, VA and Totsky, IV (2014) Selective elimination of gametes during pollen storage at low temperature as a way to improve the genetic structure of sporophytic population for cold tolerance. Helia 37: 227235. https://doi.org/10.1515/helia-2014-0021.CrossRefGoogle Scholar
Mobasser, HR and Tavassoli, A (2013) Effect of water stress on quantitative and qualitative characteristics of yield in sunflower (Helianthus annuus L.). Journal of Novel Applied Sciences 299302. http://jnasci.org/wp-content/uploads/2013/09/299-302.pdf.Google Scholar
Muchow, RC (1985) Phenology, seed yield and water use of seed legumes grown under different soil water regimes in a semi-arid tropical environment. Field Crops Research 11: 8197. https://doi.org/10.1016/0378-4290(85)90093-0.CrossRefGoogle Scholar
Naeem, MK, Ahmad, M, Kamran, M, Shah, MKN and Iqbal, MS (2015) Physiological responses of wheat (Triticum aestivum L.) to drought stress. International Journal of Plant Soil Science 6: 19. https://doi.org/10.9734/IJPSS/2015/9587.CrossRefGoogle Scholar
Nayyar, H and Gupta, D (2006) Differential sensitivity of C3 and C4 plants to water deficit stress: association with oxidative stress and antioxidants. Environmental and Experimental Botany 58: 106113. https://doi.org/10.1016/j.envexpbot.2005.06.021.CrossRefGoogle Scholar
Neale, DB (2007) Genomics to tree breeding and forest health. Current Opinion in Genetics and Development 17: 539544. https://DOI:10.1016/j.gde.2007.10.002.CrossRefGoogle ScholarPubMed
Nezamia, A, Boroumand Rezazadehb, Z and Hosseini, A (2008) Effects of drought stress and defoliation on sunflower (Helianthus annuus) in controlled conditions. Desert 12: 99104. https://DOI : 10.22059/JDESERT.2008.27108.Google Scholar
Pritchard, JK, Stephens, M and Donnelly, P (2000) Inference of population structure using multilocus genotype data. Genetics 155: 945959. https://www.genetics.org/content/155/2/945.Google ScholarPubMed
Qadir, G and Ahmad, RA (2005) Growth and development of sunflower in response to seasonal variations. Helia 28: 159166. https://doi.org/10.2298/hel0542159f.Google Scholar
Rawson, HM and Evans, LT (1971) The contribution of stem reserves to seed development in a range of wheat cultivars of different height. Australian Journal of Agricultural Research 22: 851863. https://doi.org/10.1071/AR9710851.CrossRefGoogle Scholar
Reddy, PM, Sarla, N and Siddiq, EA (2002) Inter simple sequence repeat (ISSR) polymorphism and its application in plant breeding. Euphytica 128:917. https://link.springer.com/article/10.1023/A%3A1020691618797.CrossRefGoogle Scholar
Sadras, VO, Connor, DJ and Whitfield, DM (1993) Yield, yield components and source-sink relationships in water-stressed sunflower. Field Crops Research 31: 2739. https://doi.org/10.1016/0378-4290(93)90048-R.CrossRefGoogle Scholar
Sadras, VO, Wilson, LJ and Lally, DA (1998) Water deficit enhanced cotton resistance to spider mite herbivory. Annals of Botany 81: 273286. https://doi.org/10.1006/anbo.1997.0551.CrossRefGoogle Scholar
Saeed, M, Wangzhen, G and Tianzhen, Z (2014) Association mapping for salinity tolerance in cotton (Gossypium hirsutum L.) germplasm from US and diverse regions of China. Australian Journal of Crop Science 8: 338346. http://www.cropj.com/muhammad_8_3_2014_338_346.pdf.Google Scholar
Siddique, MRB, Hamid, AIMS and Islam, MS (2000) Drought stress effects on water relations of wheat. Botanical Bulletin of Academia Sinica 41. https://ejournal.sinica.edu.tw/bbas/content/2000/1/bot11-06.html.Google Scholar
Soleimanzadeh, H, Habibi, D, Ardakani, MR, Paknejad, F and Rejali, F (2010) Response of sunflower (Helianthus annuus L.) to drought stress under different potassium levels. World Applied Sciences Journal 8: 443448. http://www.idosi.org/.../9.pdf.Google Scholar
Stone, LR, Goodrum, DE, Jaafar, MN and Khan, AH (2001) Rooting front and water depletion depths in seed sorghum and sunflower. Agronomy Journal 93: 11051110. https://DOI:10.2134/agronj2001.9351105x.CrossRefGoogle Scholar
Terzi, R and Kadioglu, A (2006) Drought stress tolerance and the antioxidant enzyme system. Acta Biologica Cracoviensia Series Botanica 48: 8996. http://yadda.icm.edu.pl/yadda/element/bwmeta1.element.agro-article-660f9607-d2be-468c-a423-b0be200de438.Google Scholar
Tezara, W, Mitchell, VJ, Driscoll, SD and Lawlor, DW (1999) Water stress inhibits plant photosynthesis by decreasing coupling factor and ATP. Nature 401: 914. http://people.bu.edu/nathan/tezara.pdf.CrossRefGoogle Scholar
Totsky, IV and Lyakh, VA (2015) Pollen selection for drought tolerance in sunflower. Helia 38: 211220. https://doi.org/10.1515/helia-2015-0012.CrossRefGoogle Scholar
Turhan, H and Baser, I (2004) In vitro and in vivo water stress in sunflower (Helianthus annuus L.). Helia 27: 227236. https://doi.org/10.2298/hel0440227t.CrossRefGoogle Scholar
Vanitha, J, Manivannan, N and Chandirakala, R (2014) Qualitative trait loci analysis for seed yield and component traits in sunflower. African Journal of Biotechnology 13: 754761. https://DOI : 10.5897/AJB2013.12325.Google Scholar
Vega, CRC, Andrade, FH, Sadras, VO, Uhart, SA and Valentinuz, OR (2001) Seed number as a function of growth. A comparative study in soybean, sunflower and maize. Crop Science 41: 748754. https://doi:10.2135/cropsci2001.413748x.CrossRefGoogle Scholar
Yang, F and Miao, LF (2010) Adaptive responses to progressive drought stress in two poplar species originating from different altitudes. Silva Fennica 44: 2337. https://doi.org/10.14214/sf.160.CrossRefGoogle Scholar
Zaffaroni, E and Schneiter, AA (1991) Sunflower production as influenced by plant type, plant population, and row arrangement. Agronomy Journal 83: 113118. 10.2134/agronj1991.00021962008300010027x.CrossRefGoogle Scholar
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