Evaluation of wheat genotypes for drought toleranceusing PEG-6000 at different phenological stages
DOI:
https://doi.org/10.55627/zoobotanica.002.03.0942Keywords:
Root traits, genetic diversity, drought tolerance, PEG-6000Abstract
Drought stress significantly affects the growth and yield of wheat crop. However, tremendous variability exists amongst genotypes concerning their reaction to drought stress. Therefore, figuring out the effects of drought stress on yield and growth of crop plants might assist to select the superior genotypes. In the current study, forty wheat genotypes were assessed for drought tolerance using PEG-6000 at seedling, tillering, heading and maturity stage at PMAS-Arid Agriculture University, Rawalpindi, Punjab, Pakistan during 2022-23. ANOVA revealed significant variation (P≤0.05) among genotypes for all traits in all the growth stages in both conditions (drought and normal). Mean comparison analysis showed the genotypes LLR-25 (12.73g), Lasani-08 (12.69g) and WC-26 (12.57g) were high-yielding and also performed well in terms of root-shoot-related traits under drought condition. Correlation depicted the highly significant positive association of yield per plant with 1000 grain weight (0.85**) as well as positive association with traits i.e., root length at seedling (0.08), tillering (0.27) and heading (0.14) stage, no. of crown roots at tillering (0.13), no. of seminal roots at tillering (0.04) and heading (0.17) under drought condition. Moreover, spike length showed a positive highly significant association with root length (0.48**) at seedling and no. of seminal roots (0.4**) at heading stage under drought condition. PCA bi-plot analysis emphasized genotypes related to specific traits showing their importance under drought stress condition. Moreover, PCA bi-plot revealed the distinctness and strong association with key drought-resilient traits of genotype Chakwal-50. Hence, this study identified the genotypes viz. Chakwal-50, LLR-25, Lasani-08 and WC-26 have desirable root parameters as well as found best regarding yield and related traits under water deficit condition. The selected genotypes can be sown directly under water-deficit condition and may be further utilized for drought-tolerance breeding programs for varietal improvements in the current scenario of the changing climate.
References
Anwaar, H. A., Perveen, R., Mansha, M. Z., Abid, M., Sarwar, Z. M., Aatif, H. M., ... & Khan, K. A. (2020). Assessment of grain yield indices in response to drought stress in wheat (Triticum aestivum L.). Saudi Journal of Biological Sciences, 27(7), 1818-1823. https://doi.org/10.1016/j.sjbs.2020.02.009
Asseng, S., Ewert, F., Martre, P., Rötter, R. P., Lobell, D. B., Cammarano, D., & Zhu, Y. (2015). Rising temperatures reduce global wheat production. Nature Climate Change, 5(2), 143-147. https://doi.org/10.1038/nclimate2470
Bengough, A. G., Gordon, D. C., Al-Menaie, H., Ellis, R. P., Allan, D. L., Keith, R., Thomas, W. T. B., & Forster, B. P. (2004). Gel observation chamber for rapid screening of root traits in cereal seedlings. Plant and Soil, 262, 63–70. https://doi.org/10.1023/B:PLSO.0000048446.65588.00
Blum, A., & Ritchie, J. T. (1984). Effect of soil surface water content on sorghum root distribution in the soil. Field Crops Research, 8, 169–176. https://doi.org/10.1016/0378-4290(84)90019-1
Budak, H., Hussain, B., Khan, Z., & Ozturk, N. Z. (2015). From genetics to functional genomics: Improvement in drought signaling and tolerance in wheat. Frontiers in Plant Science, 6, 155252. https://doi.org/10.3389/fpls.2015.01085
El Bilali, H., Bassole, I. H. N., Dambo, L., & Berjan, S. (2020). Climate change and food security. Agriculture & Forestry/Poljoprivreda i Sumarstvo, 66(3). https:// doi 10.17707/AgricultForest.66.3.16
Fatima, M., Ahmed, Z., Aslam, M., & Zaynab, M. (2018). Drought effect and tolerance potential of wheat: A mini-review. International Journal of Nanotechnology and Allied Sciences, 2(2), 16-21.
Farooq, M., Hussain, M., Ul-Allah, S., & Siddique, K. H. (2019). Physiological and agronomic approaches for improving water-use efficiency in crop plants. Agricultural Water Management, 219, 95-108. https://doi.org/10.1016/j.agwat.2019.04.018
Heim, R. R. (2002). A review of twentieth-century drought indices used in the United States. Bulletin of the American Meteorological Society, 83(8), 1149–1165. https://doi.org/10.1175/1520-0477(2002)083<1149:AROTDI>2.3.CO;2
Hossain, A., Skalicky, M., Brestic, M., Maitra, S., Ashraful Alam, M., Syed, M. A., & Islam, T. (2021). Consequences and mitigation strategies of abiotic stresses in wheat (Triticum aestivum L.) under the changing climate. Agronomy, 11(2), 241. https://doi.org/10.3390/agronomy11020241
Kareem, H. A., Saleem, M. F., Saleem, S., Rather, S. A., Wani, S. H., Siddiqui, M. H., ... & Wang, Q. (2022). Zinc oxide nanoparticles interplay with physiological and biochemical attributes in terminal heat stress alleviation in mungbean (Vigna radiata L.). Frontiers in Plant Science, 13, 842349. https://doi.org/10.3389/fpls.2022.842349
Khalili, M., Naghavi, M. R., Pour-Aboughadareh, A. R., & Talebzadeh, S. J. (2012). Evaluating drought stress tolerance based on selection indices in spring canola cultivars (Brassica napus L.). Journal of Agricultural Science, 4(11), 78-85. https://doi.org/10.5539/jas.v4n11p78
Kirby, E. J. M., & Appleyard, M. (1987). Cereal development guide (85 pp.). NAC Cereal Unit.
Klepper, B., 1991. Root-shoot relationships. Plant roots: the hidden half, pp.265-286.
Liao, M., Palta, J. A., & Fillery, I. R. P. (2006). Root characteristics of vigorous wheat improve early nitrogen uptake. Australian Journal of Agricultural Research, 57, 1097–1107. https://doi.org/10.1071/AR05161
Liwani, U., Magwaza, L. S., Odindo, A. O., & Sithole, N. J. (2019). Growth, morphological, and yield responses of irrigated wheat (Triticum aestivum L.) genotypes to water stress. Acta Agriculturae Scandinavica, Section B—Soil & Plant Science, 69(4), 369-376. https://doi.org/10.1080/09064710.2019.1585222
Mahpara, S., Zainab, A., Ullah, R., Kausar, S., Bilal, M., Latif, M. I., & Zuan, A. T. K. (2022). The impact of PEG-induced drought stress on seed germination and seedling growth of different bread wheat (Triticum aestivum L.) genotypes. PLOS ONE, 17(2), e0262937. https://doi.org/10.1371/journal.pone.0262937
Manschadi, A. M., Christopher, J., deVoil, P., & Hammer, G. L. (2006). The role of root architectural traits in adaptation of wheat to water-limited environments. Functional Plant Biology, 33, 823–837. https://doi.org/10.1071/FP06015
Maqbool, R., Sajjad, M., Khaliq, I., Aziz-ur-Rehman, Khan, A. S., & Khan, S. H. (2010). Morphological diversity and traits association in bread wheat (Triticum aestivum L.). American-Eurasian Journal of Agriculture & Environmental Sciences, 8, 216–224.
Marcek, T., Hamow, K. A., Végh, B., Janda, T., & Darko, E. (2019). Metabolic response to drought in six winter wheat genotypes. PLOS ONE, 14(2), 1–23. https://doi.org/10.1371/journal.pone.0212411
Mohammadi-joo, S., Mirasi, A., Saeidi-Aboeshaghi, R., & Amiri, M. (2015). Evaluation of bread wheat (Triticum aestivum L.) genotypes based on resistance indices under field conditions. International Journal Bioscience, 6(2), 331-337.
Mozaffari, G. A. (2022). Climate change and its consequences in agriculture. The Nature, Causes, Effects and Mitigation of Climate Change on the Environment, 83.
Mundim, F. M., & Pringle, E. G. (2018). Whole-plant metabolic allocation under water stress. Frontiers in Plant Science, 9, 852. https://doi.org/10.3389/fpls.2018.00852
Pour-Aboughadareh, A., Mohammadi, R., Etminan, A., Shooshtari, L., Maleki-Tabrizi, N., & Poczai, P. (2020). Effects of drought stress on some agronomic and morpho-physiological traits in durum wheat genotypes. Sustainability, 12(14), 5610. https://doi.org/10.3390/su12145610
Prasad, P. V., Bheemanahalli, R., & Jagadish, S. K. (2017). Field crops and the fear of heat stress: Opportunities, challenges, and future directions. Field Crops Research, 200, 114-121. https://doi.org/10.1016/j.fcr.2016.10.003
Qasim, M., Ahmed, W., Safdar, U., Maqbool, R., Sajid, H. B., Noor, H., & Ul Haq, M. I. (2022). Effect of drought stress on fertile tillers of wheat genotypes (Triticum aestivum L.). International Journal of Agriculture & Biosciences, 172-180. https://doi.org/10.47278/journal.ijab/2022.024
Reynolds, M. P., Quilligan, E., Aggarwal, P. K., Bansal, K. C., Cavalieri, A. J., Chapman, S. C., & Yadav, O. P. (2016). An integrated approach to maintaining cereal productivity under climate change. Global Food Security, 8, 9-18. https://doi.org/10.1016/j.gfs.2016.03.003
Rijal, B., Baduwal, P., Chaudhary, M., Chapagain, S., Khanal, S., Khanal, S., & Poudel, P. B. (2021). Drought stress impacts on wheat and its resistance mechanisms. Malaysian Journal of Sustainable Agriculture, 5, 67-76.
Robertson, B. M., Waines, J. G., & Gill, B. S. (1979). Genetic variability for seedling root numbers in wild and domesticated wheat. Crop Science, 19, 843-847. https://doi.org/10.2135/cropsci1979.0011183X001900060010x
Seleiman, M. F., Al-Suhaibani, N., Ali, N., Akmal, M., Alotaibi, M., Refay, Y., & Battaglia, M. L. (2021). Drought stress impacts on plants and different approaches to alleviate its adverse effects. Plants, 10(2), 259. https://doi.org/10.3390/plants10020259
Shao, H. B., Chu, L. Y., Jaleel, C. A., Manivannan, P., Panneerselvam, R., & Shao, M. A. (2009). Understanding water deficit stress-induced changes in the basic metabolism of higher plants–biotechnologically and sustainably improving agriculture and the eco-environment in arid regions of the globe. Critical Reviews in Biotechnology, 29(2), 131-151. https://doi.org/10.1080/07388550902704345
Tian, X., Engel, B. A., Qian, H., Hua, E., Sun, S., & Wang, Y. (2021). Will reaching the maximum achievable yield potential meet future global food demand? Journal of Cleaner Production, 294, 126285. https://doi.org/10.1016/j.jclepro.2021.126285
Xiong, W., Asseng, S., Hoogenboom, G., Hernandez-Ochoa, I., Robertson, R., Sonder, K., & Gerard, B. (2020). Different uncertainty distribution between high and low latitudes in modelling warming impacts on wheat. Nature Food, 1(1), 63-69. https://doi.org/10.1038/s41575-019-0103-7
Yang, H., Li, J., Wu, G., Huang, X., & Fan, G. (2023). Maize straw mulching with no-tillage increases fertile spike and grain yield of dryland wheat by regulating root-soil interaction and nitrogen nutrition. Soil and Tillage Research, 228, 105652. https://doi.org/10.1016/j.still.2022.105652
Zhao, C., Liu, B., Piao, S., Wang, X., Lobell, D. B., Huang, Y., & Asseng, S. (2017). Temperature increase reduces global yields of major crops in four independent estimates. Proceedings of the National Academy of Sciences, 114(35), 9326-9331. https://doi.org/10.1073/pnas.1701762114
Zhou, Y., Liu, J., Guo, J., Wang, Y., Ji, H., Chu, X., & Ma, Y. (2022). GmTDN1 improves wheat yields by inducing dual tolerance to both drought and low‐N stress. Plant Biotechnology Journal, 20(8), 1606-1621. https://doi.org/10.1111/pbi.13735
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Copyright (c) 2025 Sanjeela Sabahat, Suleman Gohar, Muhammad Usman Ali, Ahsan Javed, Rashid Mehmood Rana, Nadeem Ahmad, Kausar Nawaz Shah, Juliya Abbasi, Rabia Ikram, Muhammad Qasim Idrees, Muhammad Abdullah

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