Wheat genotypes screening for high temperature tolerance under late sowing conditions
DOI:
https://doi.org/10.38211/joarps.2022.3.1.21Keywords:
Wheat, heat, late sowing, biological yield, grain yieldAbstract
High temperature especially affects terminal end of inflorescence during anthesis and grain filling thus significantly reducing quality and yield of wheat. The key complication with late sown wheat rises due to high temperature during reproduction process causing lower grain yield. This study was planned to screen six newly developed wheat genotypes for high temperature tolerance. The study was led at experimental Farm of NIA, Tandojam during 2011-12 where the minimum, maximum temperatures and humidity were recorded. Grain yield and associated traits in genotypes of wheat significantly decreased under late sowing. About 15.8% and 14.0% reduction was measured in days to heading and maturity, respectively in late-sown trial. Morphological traits viz., plant height, spike length, spikelets per spike, grains per spike, 1000-grain weight, biological weight and grain yield per plant also decreased by 9.4, 17.4, 11.2, 11.4, 20.4, 62.2 and 54.8 %, respectively under late planting as compared to normal sowing. Genotype MSH-36 produced significantly higher 1000-grain weight (43.0 g) and less reduction than other genotypes at late sowing, MSH-3 and NIA-8/7 gave bold seeds with less reduction. The maturity period of wheat genotypes also decreased to about 16.8% for late planted wheat.
Downloads
References
Abdullah, M., Aziz-Ur-Rehman, N. Ahmad and I. Rasul. (2007). Planting time effect on grain and quality characteristics of wheat. Pak. J. Agri. Sci. 44:200-202.
Ahmed, K., G. Shabbir, M. Ahmed and K. N Shah. (2020). Phenotyping for drought resistance in bread wheat using physiological and biochemical traits. Sci. Total Environ. 729, 139082. DOI: https://doi.org/10.1016/j.scitotenv.2020.139082
Anonymous. (1991). MSTATC package, Version 1. Michigan State University. USA.
Ansari, A.H., A.M. Khushk, M.A. Sethar, A.N. Arian and M.Y. Memon. (1989). Effect of sowing dates on the growth and yield of wheat cultivars. Pak. J. Sci. Ind. Res. 32(1): 39-42.
Ashraf, M. and P.J.C. Harris. (2005). Abiotic Stresses; plant resistance through breeding and molecular approaches. Food Products Press. USA.
Ayeneh, A., M. Van-Ginkel, M. P. Reynols and K. Ammar. (2002). Comparison of leaf, spike, peduncle and canopy temperature depression in wheat under heat stress. Field Crops Res. 79:173-184. DOI: https://doi.org/10.1016/S0378-4290(02)00138-7
Farooq, M., H. Bramley, J. A. Palta, and K. H. M. Siddique. (2011). Heat stress in wheat during reproductive and grain-filling phases. Critical Reviews in Plant Sciences, 30: 491–507. DOI: https://doi.org/10.1080/07352689.2011.615687
Gibson, L.R. and G.M. Paulsen. (1999). Yield components of wheat grown under high temperature stress during reproductive growth. Crop Science. 39:1841-1846. DOI: https://doi.org/10.2135/cropsci1999.3961841x
Hafeez. R., T. Absaar, A. Imran, A. Mukhtar, Adele Muscolo, M.A. Shahzad Basra and M. Reynolds. (2021). Evaluation of Physiological and Morphological Traits for Improving Spring Wheat Adaptation to Terminal Heat Stress. Plants. 10(3), 455 DOI: https://doi.org/10.3390/plants10030455
Hamam, K.A. (2013). Response of Bread Wheat Genotypes to Heat Stress. Jordan J Agric Sci. 9(4): 486-506.
Hanson, B. (2001). Planting rate influence on yield and agronomic traits of hard red spring wheat in northeastern North Dakota. Langdon Res. Ext. Center NDSU Agric. Report 1.
Hozayan, M and A.A.A. Monem. (2010). Alleviation of potential impact of climate change of wheat productivity using arginine under irrigated Egyptian agriculture, Options mediterrraneennes, A.No.95. Economic of drought and drought preparedness in climate change context. Pp. 95-100.
Irfaq, M., T. Muhammad, M. Aminand and A. Jabbar. (2005). Performance of yield and other agronomic characters of four wheat genotypes under heat stress. Int. J. Bot. 1(2): 124-127. DOI: https://doi.org/10.3923/ijb.2005.124.127
Jain, M.P., J.P. Dixit, P.V.A. Pillai and R.A. Khan. (1992). Effect of sowing date on wheat varieties under late sown irrigated condition. Indian J. Agric. Sci. 62: 669-671.
Mondal S., R.P. Singh, J, Crossa, J. Huerta-Espino, I. Sharma, R. Chatrath, G. P. Singh, V. S. Sohu, G. S. Mavi, V.S.P. Sukuru, I. K. Kalappanavar, V.K. Mishra, M. Hussain, N.R. Gautam, J. Uddin, N.C.D. Barma, A. Hakim and A.K. Joshi. (2013). Earliness in wheat: A key to adaptation under terminal and continual high temperature stress in South Asia. Field Crops Research. 151: 19–26. DOI: https://doi.org/10.1016/j.fcr.2013.06.015
Moshatati. A., S.A. Siadat, K.H. Alami-Saeid, A.M. Bakhshandeh and M.R. Jalal-Kamali. (2012). Effect of Terminal Heat Stress on Yield and Yield Components of Spring Bread Wheat Cultivars in Ahwaz, Iran. Int. J. Agri., Res. and Rev. 2(6): 844-849.
Mukti R. P, G. Suryakant, P. P. Madhav, H. D. Krishna, B. T. Dhruba and K. P. Hema. (2020). Evaluation of Wheat Genotypes under Irrigated, Heat Stress and Drought Conditions. Research Article. 9(1): https://www.iomcworld.org/articles/evaluation-of-wheat-genotypes-under-irrigated-heat-stress-and-drought-conditions-45481.html.
Narendra M.C., C. Roy, S. Kumar, P. Virk and D. Nitish. (2021) Effect of terminal heat stress on physiological traits, grain zinc and iron content in wheat (Triticum aestivum L.). Cz. J.of Gen and Plant Breed. 57(2): 43–50. DOI: https://doi.org/10.17221/63/2020-CJGPB
Paulsen, G.M. (1994). High temperature response of crop plants. pp. 365-389. In: Physiology and determination of Crop Yield ASA-CCSA-SSSA. Madison, WI. DOI: https://doi.org/10.2134/1994.physiologyanddetermination.c25
Pradhan G.P., P.V.V. Prasad, A.K. Fritz, M.B. Kirkham and B.S. Gill. (2012). Effects of drought and high temperature stress on synthetic hexaploid wheat. Fun. Plant Bio. 39: 190–198. DOI: https://doi.org/10.1071/FP11245
Qamar, M., Shafiullah and S. Makeen. (2004). Genetic variability among wheat cultivars and effect of planting date on grain and straw yield under double cropping zone of Northern areas of Pakistan. Sarhad J. of Agri. 20:99-102.
Refay, Y.A. (2011). Yield and yield component parameters of bread wheat genotypes as affected by sowing dates. Middle-East J. Sci. Res. 7(4): 484-489.
Satorre, E. H. and G. A. Slafer (1999). Wheat: Ecology and physiology of yield determination. New York: Food Products Press
Shezad, K., J. Bakht, W. Ali Shah, M. Shafi and N. Jabeen. (2002). Yield and yield components of various wheat cultivars as affected by different sowing dates. Asian J. Plant Sci. 1(5): 522-525. DOI: https://doi.org/10.3923/ajps.2002.522.525
Shafiq, H.M. (2004). Modeling growth, radiation use efficiency and yield of wheat at different sowing dates and nitrogen levels under arid conditions of Bhawalpur. M.Sc. (Hons.) Thesis, University of Agriculture, Faisalabad-Pakistan.
Sial, M.A., M.A. Arain, S.D. Khanzada, M.H. Naqvi, M.U. Dhot and N.A. Nizamani. (2005). Yield and quality parameters of wheat genotypes as affected by sowing dates and high temperature stress. Pak. J. Bot. 37(3): 575-584.
Singh A, D. Singh, J.S. Kang, N. Aggarwal. (2011). Management practices to mitigate the impact of high temperature on wheat: A Review. IIOAB J. 2(7):11-22
Stone, P.J. and M.E. Nicolas. (1994). Wheat cultivars vary widely in their responses of grain yield and quality to short periods of post-anthesis heat stress. Aus. J. Plant Physio. 21:887-900. DOI: https://doi.org/10.1071/PP9940887
Yamamoto, Y, R. Aminaka R, Yoshioka M, Khatoon M, Komayama K, and D. Takenaka (2008). Quality control of photosystem II: Impact of light and heat stresses. Photosynth Res. 98:589 DOI: https://doi.org/10.1007/s11120-008-9372-4
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2022 Samia Arain, Ghulam Muhiyuddin Kaloi, Mahboob Ali Sail, Abdul Fatah Soomro, Ali Hassan Mari, Muhammad Aslam Rajput, Riaz Noor Panhwar, Abdul Ghani Soomro
This work is licensed under a Creative Commons Attribution 4.0 International License.