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Evaluation of Triticum durumAegilops tauschii derived primary synthetics as potential sources of heat stress tolerance for wheat improvement

Published online by Cambridge University Press:  19 March 2021

Amandeep Kaur*
Affiliation:
School of Agricultural Biotechnology, Punjab Agricultural University, Ludhiana, India
Parveen Chhuneja
Affiliation:
School of Agricultural Biotechnology, Punjab Agricultural University, Ludhiana, India
Puja Srivastava
Affiliation:
Department of Plant Breeding and Genetics, Punjab Agricultural University, Ludhiana, India
Kuldeep Singh
Affiliation:
School of Agricultural Biotechnology, Punjab Agricultural University, Ludhiana, India
Satinder Kaur
Affiliation:
School of Agricultural Biotechnology, Punjab Agricultural University, Ludhiana, India
*
*Corresponding author. E-mail: aman-coasab@pau.edu

Abstract

Addressing the impact of heat stress during flowering and grain filling is critical to sustaining wheat productivity to meet a steadily increasing demand from a rapidly growing world population. Crop wild progenitor species of wheat possess a wealth of genetic diversity for several biotic and abiotic stresses, and morphological traits and can serve as valuable donors. The transfer of useful variation from the diploid progenitor, Aegilops tauschii, to hexaploid wheat can be done through the generation of synthetic hexaploid wheat (SHW). The present study targeted the identification of potential primary SHWs to introduce new genetic variability for heat stress tolerance. Selected SHWs were screened for different yield-associated traits along with three advanced breeding lines and durum parents as checks for assessing terminal heat stress tolerance under timely and late sown conditions for two consecutive seasons. Heat tolerance index based on the number of productive tillers and thousand grain weight indicated that three synthetics, syn9809 (64.32, 78.80), syn14128 (50.30, 78.28) and syn14135 (58.16, 76.03), were able to endure terminal heat stress better than other SHWs as well as checks. One of these synthetics, syn14128, recorded a minimum reduction in thousand kernel weight (21%), chlorophyll content (2.56%), grain width (1.07%) despite minimum grain-filling duration (36.15 d) and has been selected as a potential candidate for introducing the terminal heat stress tolerance in wheat breeding programmes. Breeding efforts using these candidate donors will help develop lines with a higher potential to express the desired heat stress-tolerant phenotype under field conditions.

Type
Research Article
Copyright
Copyright © The Author(s), 2021. Published by Cambridge University Press on behalf of NIAB

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Footnotes

Present address: National Bureau of Plant Genetic Resources, Pusa Road, New Delhi, India.

References

Abinasa, M, Ayana, A and Bultosa, G (2011) Genetic variability, heritability and trait associations in durum wheat (Triticum turgidum L. var. durum) genotypes. African Journal of Agricultural Research 6: 39723979.Google Scholar
Acevedo, E, Silva, P, Fraga, H, Pagas, R and Mujeeb-Kazi, A (1999) Bread wheat, durum wheat, and synthetic hexaploid wheat in saline and non-saline soils. Wheat Special Report No. 49, Mexico, D.F.: CIMMYT.Google Scholar
Agrama, HA, Eizenga, GC and Yan, W (2007) Association mapping of yield and its components in rice cultivars. Molecular Breeding 19: 341356.CrossRefGoogle Scholar
Al-Khatib, K and Paulsen, GM (1984) Mode of high temperature injury to wheat during grain development. Physiologia Plantarum 61: 363368.CrossRefGoogle Scholar
Ali, S, Liu, Y, Ishaq, M, Shah, T, Abdullah, Ilyas A and Din, I (2017) Climate change and its impact on the yield of major food crops: evidence from Pakistan. Foods 6: 3958.CrossRefGoogle ScholarPubMed
Alvarado, G, Rodríguez, FM, Pacheco, A, Burgueño, J, Crossa, J, Vargas, M, Pérez-Rodríguez, P and Lopez-Cruz, MA (2020) META-R: a software to analyze data from multi-environment plant breeding trials. Crop Journal 8: 745756.CrossRefGoogle Scholar
Arora, S, Cheema, J, Poland, J, Uauy, C and Chhuneja, P (2019) Genome-wide association mapping of grain micronutrients concentration in Aegilops tauschii. Frontiers in Plant Science 10: 114.Google ScholarPubMed
Arora, S, Kaur, S, Dhillon, GS, Singh, R, Kaur, J, Sharma, A and Chhuneja, P (2021) Introgression and genetic mapping of leaf rust and stripe rust resistance in Aegilops triuncialis. Journal of Genetics 100: 617.CrossRefGoogle ScholarPubMed
Asseng, S, Ewert, F, Martre, P, Rötter, RP, Lobell, DB, Cammarano, D, Kimball, BA, Ottman, MJ, Wall, GW, White, JW, Reynolds, MP, Alderman, PD, Prasad, PVV, Aggarwal, PK, Anothai, J, Basso, B, Biernath, C, Challinor, AJ, De Sanctis, G, Doltra, J, Fereres, E, Garcia-Vila, M, Gayler, S, Hoogenboom, G, Hunt, LA, Izaurralde, RC, Jabloun, M, Jones, CD, Kersebaum, KC, Koehler, AK, Müller, C, Naresh Kumar, S, Nendel, C, O'leary, G, Olesen, JE, Palosuo, T, Priesack, E, Eyshi Rezaei, E, Ruane, AC, Semenov, MA, Shcherbak, I, Stöckle, C, Stratonovitch, P, Streck, T, Supit, I, Tao, F, Thorburn, PJ, Waha, K, Wang, E, Wallach, D, Wolf, J, Zhao, Z and Zhu, Y (2015) Rising temperatures reduce global wheat production. Nature Climate Change 5: 143147.CrossRefGoogle Scholar
Bala, P and Sikder, S (2018) Wheat genotypes as affected by terminal heat stress in northern Bangladesh. Bangladesh Agronomy Journal 21: 2537.CrossRefGoogle Scholar
Balla, K, Bedő, Z and Veisz, O (2007) Effect of heat and drought stress on the photosynthetic processes of wheat. Cereal Research Communications 34: 381384.CrossRefGoogle Scholar
Balla, K, Karsai, I, Bencze, S and Veisz, O (2012) Germination ability and seedling vigour in the progeny of heat-stressed wheat plants. Acta Agronomica Hungarica 60: 299308.CrossRefGoogle Scholar
Balla, K, Karsai, I, Bónis, P, Kiss, T, Berki, Z, Horváth, Á, Mayer, M, Bencze, S and Veisz, O (2019) Heat stress responses in a large set of winter wheat cultivars (Triticum aestivum L.) depend on the timing and duration of stress. PLoS ONE 14: 120.CrossRefGoogle Scholar
Bebber, DP, Ramotowski, MAT and Gurr, SJ (2013) Crop pests and pathogens move polewards in a warming world. Nature Climate Change 3: 985988.CrossRefGoogle Scholar
Begum, T, Ahmad, S and Khan, BR (1994) Bread wheat selection for tolerance to abiotic stresses in Highland Balochestan. Rachis (Barley and Wheat Newsletter) 13: 1115.Google Scholar
Bhanu, AN, Arun, B and Mishra, VK (2018) Genetic variability, heritability and correlation study of physiological and yield traits in relation to heat tolerance in wheat (Triticum aestivum L.). Biomedical Journal of Scientific & Technical Research 2: 21122116.CrossRefGoogle Scholar
Bheemanahalli, R, Sunoj, VSJ, Saripalli, G and Prasad, PVV (2019) Germination, seed set, and grain filling in spring wheat. Crop Science 59: 113.CrossRefGoogle Scholar
Bhushan, B, Bharti, S, Ojha, A, Pandey, M, Gourav, SS, Tyagi, BS and Singh, G (2013) Genetic variability, correlation coefficient and path analysis of some quantitative traits in bread wheat. Journal of Wheat Research 5: 2126.Google Scholar
Calderini, DF, Abeledo, LG, Savin, R and Slafer, GA (1999) Effect of temperature and carpel size during pre-anthesis on potential grain weight in wheat. Journal of Agricultural Science 132: 453459.CrossRefGoogle Scholar
Chhuneja, P, Dhaliwal, H, Bains, N and Singh, K (2006) Aegilops kotschyi and Aegilops tauschii as sources for higher levels of grain Iron and Zinc. Plant Breeding 125: 529531.CrossRefGoogle Scholar
Chhuneja, P, Kaur, S, Singh, K and Dhaliwal, HS (2008) Evaluation of Aegilops tauschii (Coss.) germplasm for karnal bunt resistance in a screen house with simulated environmental conditions. Plant Genetic Resources: Characterization and Utilization 6: 7984.CrossRefGoogle Scholar
Chhuneja, P, Garg, T, Kumar, R, Kaur, S, Sharma, A, Ahuja, M, Dhaliwal, HS, Characterization, KS, Chhuneja, P, Garg, T, Kumar, R, Kaur, S, Sharma, A, Bains, NS and Ahuja, M (2010) Evaluation of Aegilops tauschii Coss. germplasm for agro-morphological traits and genetic diversity using SSR loci. Indian Journal of Genetics 70: 328338.Google Scholar
Dabi, A, Mekbib, F and Desalegn, T (2019) Genetic variability studies on bread wheat (Triticum aestivum L.) genotypes. International Journal of Livestock Production 11: 4154.Google Scholar
del Blanco, IA, Rajaram, S and Kronstad, WE (2001) Agronomic potential of synthetic hexaploid wheat-derived populations. Crop Science 41: 670676.CrossRefGoogle Scholar
Dhanda, SS and Munjal, R (2012) Heat tolerance in relation to acquired thermotolerance for membrane lipids in bread wheat. Field Crops Research 135: 3037.CrossRefGoogle Scholar
Dhillon, GS, Kaur, S, Das, N, Singh, R, Poland, J, Kaur, J and Chhuneja, P (2020) QTL mapping for stripe rust and powdery mildew resistance in Triticum durumAegilops speltoides backcross introgression lines. Plant Genetic Resources: Characterisation and Utilisation 18: 211221.CrossRefGoogle Scholar
Dixon, GR (2012) Climate change-impact on crop growth and food production, and plant pathogens. Canadian Journal of Plant Pathology 34: 362379.CrossRefGoogle Scholar
Djanaguiraman, M, Boyle, DL, Welti, R, Jagadish, SVK and Prasad, PVV (2018) Decreased photosynthetic rate under high temperature in wheat is due to lipid desaturation, oxidation, acylation, and damage of organelles. BMC Plant Biology 18: 117.CrossRefGoogle ScholarPubMed
Donaldson, E, Schillinger, WF and Dofing, SM (2001) Straw production and grain yield relationships in winter wheat. Crop Science 41: 100106.CrossRefGoogle Scholar
Dubey, R, Pathak, H, Singh, S and Chakravarti, B (2019) Impact of sowing dates on terminal heat tolerance of different wheat (Triticum aestivum L.) cultivars. National Academy Science Letters 42: 445449.CrossRefGoogle Scholar
Dubey, R, Pathak, H, Chakrabarti, B, Singh, S, Gupta, DK and Harit, RC (2020) Impact of terminal heat stress on wheat yield in India and options for adaptation. Agricultural Systems 181: 102826102836.CrossRefGoogle Scholar
Dwivedi, A, Pawar, I, Shashi, M and Madan, S (2002) Studies on variability parameters and character association among yield and quality attributing traits in wheat. Haryana Agricultural University Journal Research 32: 7780.Google Scholar
Elbashier, EM, Elbashier, EME, Idris, SE, Tadesse, W, Tahir, ISA, Ibrahim, AES, Elhashimi, AMA, Saad, SI, Idris, AA and Mustfa, HM (2019) Genetic variations, heritability, heat tolerance indices and correlations studies for traits of bread wheat genotypes under high temperature. International Journal of Climate Change Strategies and Management 11: 672686.CrossRefGoogle Scholar
Elbashir, AAE, Gorafi, YSA, Tahir, ISA, Kim, J-S and Tsujimoto, H (2017) Wheat multiple synthetic derivatives: a new source for heat stress tolerance adaptive traits. Breeding Science 67: 248256.CrossRefGoogle ScholarPubMed
El Hassouni, K, Belkadi, B, Filali-maltouf, A, Tidiane-sall, A, Al-abdallat, A, Nachit, M and Bassi, FM (2019) Loci controlling adaptation to heat stress occurring at the reproductive stage in durum wheat. Agronomy 9: 414434.CrossRefGoogle Scholar
Falconer, DS and Mackay, TFC (1996) Introduction to Quantitative Genetics. Addison Wesley Longman: Harlow, Essex, UK.Google Scholar
Fernandez, G (1992) Effective selection criteria for assessing stress tolerance. In: Kuo, C (ed.). Proceedings of the International Symposium on Adaptation of Vegetables and Other Food Crops in Temperature and Water Stress. AVRDC Publication: Tainan, Taiwan, pp. 257270.Google Scholar
Fischer, EM and Knutti, R (2015) Anthropogenic contribution to global occurrence of heavy-precipitation and high-temperature extremes. Nature Climate Change 5: 560564.CrossRefGoogle Scholar
Fischer, RA and Maurer, R (1978) Drought resistance in spring wheat cultivars. I. Grain yield responses. Australian Journal of Agricultural Research 29: 897912.CrossRefGoogle Scholar
Ghasemi, M, Zaefizadeh, M, Azimi, J and Jamaati-e-Somarin, S (2010) Study of primary adaptation of synthetic lines of bread wheat in ardabil region (Iran). World Applied Sciences Journal 9: 11131120.Google Scholar
Gibson, LR and Paulsen, GM (1999) Yield components of wheat grown under high temperature stress during reproductive growth. Crop Science 39: 18411846.CrossRefGoogle Scholar
Gupta, S, Kaur, S and Sehgal, S (2010) Genotypic variation for cellular thermotolerance in Aegilops tauschii Coss., the D genome progenitor of wheat. Euphytica 175: 373381.CrossRefGoogle Scholar
Hansen, J, Sato, M and Ruedy, R (2012) Perception of climate change. Proceedings of the National Academy of Sciences of the USA 109: E2415E2423.CrossRefGoogle ScholarPubMed
Hasan, MA and Ahmed, JU (2005) Kernel growth physiology of wheat under late planting heat stress. Journal of the National Science Foundation of Sri Lanka 33: 193204.CrossRefGoogle Scholar
Hatfield, JL and Prueger, JH (2015) Temperature extremes: effect on plant growth and development. Weather and Climate Extremes 10: 410.CrossRefGoogle Scholar
Hays, DB, Do, JH, Mason, RE, Morgan, G and Finlayson, SA (2007) Heat stress induced ethylene production in developing wheat grains induces kernel abortion and increased maturation in a susceptible cultivar. Plant Science 172: 11131123.CrossRefGoogle Scholar
Hua, J (2013) Modulation of plant immunity by light, circadian rhythm, and temperature. Current Opinion in Plant Biology 16: 406413.CrossRefGoogle ScholarPubMed
Hussain, M, Frooq, M, Shabir, G, Khan, M, Zia, B and Lee, D-J (2012) Delay in planting decreases wheat productivity. International Journal of Agriculture & Biology 14: 533539.Google Scholar
Irfan, M, Muhammad, T, Amin, M and Jabbar, A (2005) Performance of yield and other agronomic characters of four wheat genotypes under natural heat stress. International Journal of Botany 1: 124127.Google Scholar
Jafarzadeh, J, Bonnett, D, Jannink, J-L, Akdemir, D, Dreisigacker, S and Sorrells, ME (2016) Breeding value of primary synthetic wheat genotypes for grain yield. PLoS ONE 11: e0162860.Google ScholarPubMed
Jaiswal, B, Prasad, S, Rani, R, Singh, S, Kumar, A, Kumar, A and Yadav, RK (2018) Evaluation of wheat (Triticum aestivum L.) lines at reproductive stage for heat stress tolerance. International Journal of Current Microbiology and Applied Sciences 7: 13501357.Google Scholar
Jia, J, Zhao, S, Kong, X, Li, Y, Zhao, G, He, W, Appels, R, Pfeifer, M, Tao, Y, Zhang, X, Jing, R, Zhang, C, Ma, Y, Gao, L, Gao, C, Spannagl, M, Mayer, KFX, Li, D, Pan, S, Zheng, F, Hu, Q, Xia, X, Li, J, Liang, Q, Chen, J, Wicker, T, Gou, C, Kuang, H, He, G, Luo, Y, Keller, B, Xia, Q, Lu, P, Wang, J, Zou, H, Zhang, R, Xu, J, Gao, J, Middleton, C, Quan, Z, Liu, G, Wang, J, International Wheat Genome Sequencing Consortium, Yang, H, Liu, X, He, Z, Mao, L and Wang, J (2013) Aegilops tauschii draft genome sequence reveals a gene repertoire for wheat adaptation. Nature 496: 9195.CrossRefGoogle ScholarPubMed
Johnson, HW, Robinson, HF and Comstock, RE (1955) Estimates of genetic and environmental variability in soybeans. Agronomy Journal 47: 314318.CrossRefGoogle Scholar
Joshi, M and Mahal, G (2004) Influence of different environmental conditions on heritability estimates of morphological characters in durum wheat (Triticum turgidum var durum). Environmental Ecology 22: 657660.Google Scholar
Joshi, AK, Mishra, B, Chatrath, R, Ortiz Ferrara, G and Singh, RP (2007) Wheat improvement in India: present status, emerging challenges and future prospects. Euphytica 157: 431446.CrossRefGoogle Scholar
Kassambara, A and Kassambara, MA (2020) Ggpubr: ‘ggplot2’ based publication ready plots.Google Scholar
Kaur, V, Singh, S and Behl, RK (2016) Heat and drought tolerance in wheat: integration of physiological and genetic platforms for better performance under stress. Ekin Journal of Crop Breeding and Genetics 2: 114.Google Scholar
Kaur, S, Jindal, S, Kaur, M and Chhuneja, P (2018) Utilization of wild species for wheat improvement using genomic approaches. In: Gosal, SS and Wani, SH (eds). Biotechnologies of Crop Improvement. Springer International Publishing, Cham, Switzerland, pp. 105150.CrossRefGoogle Scholar
Khan, Z, Qazi, J, Rasheed, A and Mujeeb-Kazi, A (2016) Diversity in D-genome synthetic hexaploid wheat association panel for seedling emergence traits under salinity stress. Plant Genetic Resources 15: 488495.CrossRefGoogle Scholar
Kishii, M (2019) An update of recent use of Aegilops species in wheat breeding. Frontiers in Plant Science 10: 585604.CrossRefGoogle ScholarPubMed
Kuchel, H, Williams, KJ, Langridge, P, Eagles, HA and Jefferies, SP (2007) Genetic dissection of grain yield in bread wheat. I. QTL analysis. Theoretical and Applied Genetics 115: 10291041.CrossRefGoogle Scholar
Kumar, R and Gautam, HR (2014) Climate change and its impact on agricultural productivity in India. Journal of Climatology & Weather Forecasting 2: 24.CrossRefGoogle Scholar
Kumar, S, Dwivedi, V and Tyagi, N (2003) Genetic variability in some metric traits and its contribution to yield in wheat (Triticum aestivum L.). Progressive Agriculture 3: 152153.Google Scholar
Kumar, N, Kulwal, P, Balyan, H and Gupta, O (2007) QTL mapping for yield and yield contributing traits in two mapping populations of bread wheat. Molecular Breeding 19: 163177.CrossRefGoogle Scholar
Kumar, V, Sharma, PK, Kumar, H and Gupta, V (2014) Studies of variability and association of yield with some agromorphological characters in bread wheat (Triticum aestivum L.). Indian Journal of Agricultural Research 48: 429436.CrossRefGoogle Scholar
Kumar, P, Singh, G, Kumar, S, Kumar, A and Ojha, A (2016) Genetic analysis of grain yield and its contributing traits for their implications in improvement of bread wheat cultivars. Journal of Applied and Natural Science 8: 350357.CrossRefGoogle Scholar
Kumar, A, Kumar, P, Singh, G, Kumar, R and Kumar, S (2017) Genetic parameters and characters association analysis for yield components and heat tolerance in bread wheat (Triticum aestivum L.). Environment & Ecology 35: 10871092.Google Scholar
Lesk, C, Rowhani, P and Ramankutty, N (2016) Influence of extreme weather disasters on global crop production. Nature 529: 8487.CrossRefGoogle ScholarPubMed
Liu, B, Asseng, S, Liu, L, Tang, L, Cao, W and Zhu, Y (2016) Testing the responses of four wheat crop models to heat stress at anthesis and grain filling. Global Change Biology 22: 18901903.CrossRefGoogle ScholarPubMed
Luo, Q (2011) Temperature thresholds and crop production: a review. Climatic Change 109: 583598.CrossRefGoogle Scholar
Lush, J (1949) Heritability of quantitative characters in farm animals. Herbicides 35: 356357.Google Scholar
Maydup, M, Guiamet, A, Granciano, C, Lopez, J and Tambussi, E (2010) The contribution of ear photosynthesis to grain filling in bread wheat (Triticum aestivum L.). Field Crops Research 119: 4858.CrossRefGoogle Scholar
Meehl, GA and Tebaldi, C (2004) More intense, more frequent, and longer lasting heat waves in the 21st century. Science (New York, N.Y.) 305: 994997.CrossRefGoogle ScholarPubMed
Miralles, DJ, Ferro, BC and Slafer, GA (2001) Developmental responses to sowing date in wheat, barley and rapeseed. Field Crops Research 71: 211223.CrossRefGoogle Scholar
Mishra, DK, Khan, RA and Baghel, MS (2000) Stability of wheat varieties under various dates of sowing. Annals of Agricultural Sciences 21: 564566.Google Scholar
Mishra, S, Singh, S, Patil, R, Bhusal, N, Malik, A, Sindhu, S (2014) Breeding for heat tolerance in wheat. In: Shukla, R et al. (eds) Wheat: Recent Trends on Production Strategies of Wheat in India. JNKVV, Jabalpur & ICAR-IIWBR, Karnal, pp. 1529.Google Scholar
Mohamed, AM, Omara, MK, El-rawy, MA and Hassan, MI (2019) Impacts of selection for spike length on heat stress tolerance in bread wheat (Triticum aestivum L.). Plant Breeding and Biotechnology 7: 8394.CrossRefGoogle Scholar
Molla, A and Thomas, L (2009) Genetic analysis of wheat varieties for yield and its components. Annals of Biology 25: 3134.Google Scholar
Moshatati, A, Siadat, S, Kh, A, Bakhshandeh, A and Kamali, M (2012) Effect of terminal heat stress on yield and yield components of spring bread wheat cultivars in Ahwaz. International Journal of Agriculture: Research and Review 2: 844849.Google Scholar
Mukherjee, A and Wang, SS (2019) Examination of the climate factors that reduced wheat yield in Northwest India during the 2000s. Water 11: 343356.CrossRefGoogle Scholar
NCEI (2019) National centers for environmental information, state of the climate: global climate report. See https://www.ncdc.noaa.gov/sotc/global/201911 (accessed 15 January 2020).Google Scholar
Nukasani, V, Ramchandra Potdukhe, N, Bharad, S, Deshmukh, S and Shinde, SM (2013) Genetic variability, correlation and path analysis in wheat. Journal of Wheat Research 5: 4851.Google Scholar
Ogbonnaya, FC, Halloran, GM and Lagudah, ES (2005) D Genome of Wheat – 60 Years on From Kihara, Sears and McFadden. Yokohama, Japan: Kihara Memorial Foundation.Google Scholar
Okuyama, L, Federizzi, L and Fernandez, J (2005) Plant traits to complement selection based on yield components in wheat. Ciência Rural 35: 10101018.CrossRefGoogle Scholar
Pandey, GC, Sareen, S, Siwach, P and Tiwari, R (2014) Molecular characterization of heat tolerance in bread wheat (Triticum aestivum L.) using differences in thousand-grain weights (dTGW) as a potential indirect selection criterion. Cereal Research Communications 42: 3846.CrossRefGoogle Scholar
Panwar, D and Singh, I (2000) Genetic variability and character association of some yield components in winter x spring nursery of wheat. Advances in Plant Science 8: 9599.Google Scholar
Panwar, IS and Singh, V (2017) Genetic parameters of variability and path analysis in wheat under timely and late sown conditions. International Journal of Current Microbiology and Applied Sciences 6: 19141923.Google Scholar
Pradhan, GP, Prasad, PVV, Fritz, AK, Kirkham, MB and Gill, BS (2012) Effects of drought and high temperature stress on synthetic hexaploid wheat. Functional Plant Biology 39: 190198.CrossRefGoogle ScholarPubMed
Raaj, N, Singh, SK, Kumar, A and Kumar, A (2018) Assessment of variability parameters in wheat in relation to terminal heat tolerance. Journal of Pharmacognosy and Phytochemistry 7: 21552160.Google Scholar
Radmehr, M (1997) Effect of Heat Stress on Physiology of Growth and Development of Wheat. Mashhad, Iran: Ferdowsi University.Google Scholar
Randall, PJ and Moss, HJ (1990) Some effects of temperature regime during grain filling on wheat quality. Australian Journal of Agricultural Research 41: 603617.CrossRefGoogle Scholar
Rane, J, Pannu, RK, Sohu, VS, Saini, RS, Mishra, B, Shoran, J, Crossa, J, Vargas, M and Joshi, AK (2007) Performance of yield and stability of advanced wheat genotypes under heat stress environments of the Indo-Gangetic Plains. Crop Science 47: 15611573.CrossRefGoogle Scholar
R Core Team (2019) R: A language and environment for statistical computing.Google Scholar
Ristic, Z, Bukovnik, U and Prasad, PVV (2007) Correlation between heat stability of thylakoid membranes and loss of chlorophyll in winter wheat under heat stress. Crop Science 47: 20672073.CrossRefGoogle Scholar
Sandhu, SS, Kaur, P, Gill, KK and Vashisth, BB (2020) The effect of recent climate shifts on optimal sowing windows for wheat in Punjab, India. Journal of Water and Climate Change 11: 11771190.CrossRefGoogle Scholar
Sapi, S, Marker, S and Bhattacharjee, I (2017) Evaluation of genetic divergence in bread wheat (Triticum aestivum L.) genotypes for yield parameters and heat tolerance traits. Journal of Pharmacognosy and Phytochemistry 6: 253257.Google Scholar
Sareen, S, Tyagi, BS, Tiwari, V and Sharma, I (2012) Response estimation of wheat synthetic lines to terminal heat stress using stress indices. Journal of Agricultural Science 4: 97104.CrossRefGoogle Scholar
Sattar, A, Sher, A, Ijaz, M, Ul-Allah, S, Rizwan, MS, Hussain, M, Jabran, K and Cheema, MA (2020) Terminal drought and heat stress alter physiological and biochemical attributes in flag leaf of bread wheat. PLoS ONE 15: e0232974.CrossRefGoogle ScholarPubMed
Shahzad, K, Bakhat, J, Shafi, M, Shah, W and Jabeen, N (2002) Yield and yield components of various wheat cultivars as affected by different sowing dates. Asian Journal of Plant Science 1: 522525.CrossRefGoogle Scholar
Shankarrao, B, Mukherjee, S, Pal, A and De, D (2010) Estimation of variability for yield parameters in bread wheat (Triticum aestivum L.) grown in Gangetic West Bengal. Electronic Journal of Plant Breeding 1: 764768.Google Scholar
Sharma, R (2009) Cereal-based cropping systems in Asia: nutrition and disease management. In: Sadras, V and Calderini, D (eds) Crop Physiology: Applications for Genetic Improvement and Agronomy. San Diego: Academic Press, pp. 99119.CrossRefGoogle Scholar
Sharma, R and Tandon, J (1997) Investigation on heat tolerance during vegetative and grain filling phase in wheat. Crop Research Hisar 14: 269274.Google Scholar
Singh, RK and Chaudhary, BD (1977) Biometrical Methods in Quantitative Genetic Analysis. New Delhi: Kalayani Publishers.Google Scholar
Singh, S and Paul, M (2003) Growth, yield and penological responses of wheat cultivars to delayed sowing. Indian Journal of Plant Physiology 8: 277286.Google Scholar
Singh, K and Sharma, Y (2014) Effect of high temperature on yield attributing traits in bread wheat. Bangladesh Journal of Agricultural Research 36: 415426.CrossRefGoogle Scholar
Singh, S and Yadav, A (2019) Growth, yield and physiological response of wheat cultivars to terminal heat stress in north-west India. Academia Journal of Agricultural Research 3: 110.Google Scholar
Singh, A, Singh, D, Kang, J and Aggarwal, N (2011) Management practices to mitigate the impact of high temperature on wheat : a review. IIOAB Journal 2: 1122.Google Scholar
Singh, A, Kumar, A, Ahmad, E, Swati, and Jaiswal, J (2012) Combining ability and gene action studies for seed yield, its components and quality traits in bread wheat (Triticum aestivum L. em. Thell.). Electronic Journal of Plant Breeding 3: 964972.Google Scholar
Singh, MK, Sharma, PK, Tyagi, BS and Singh, G (2013) Genetic analysis for morphological traits and protein content in bread wheat (Triticum aestivum L.) under normal and heat stress environments. Indian Journal of Genetics and Plant Breeding 73: 320324.CrossRefGoogle Scholar
Singh, G, Kulshreshtha, N, Singh, B, Setter, T, Singh, M, Saharan, M, Tyagi, B, Verma, A and Sharma, I (2014) Germplasm characterization, association and clustering for salinity and water- logging tolerance in bread wheat (Triticum aestivum). Indian Journal of Agricultural Sciences 84: 11021110.Google Scholar
Singh, G, Kumar, P, Kumar, R and Gangwar, LK (2018) Genetic diversity analysis for various morphological and quality traits in bread wheat (Triticum aestivum L.). Journal of Applied and Natural Science 10: 2429.CrossRefGoogle Scholar
Sivasubramanian, S and Madhavamenon, P (1973) Genotypic and phenotypic variability in rice. Madras Agriculture Journal 60: 10931096.Google Scholar
Stone, PJ and Nicolas, ME (1995) Effect of timing of heat stress during grain filling on two wheat varieties differing in heat tolerance. I. Grain growth. Australian Journal of Plant Physiology 22: 927934.Google Scholar
Tambussi, E, Abort, J, Guamet, J, Nogue, S and Araus, J (2007) The photosynthetic role of ear in C3 cereals, metabolism, water use efficiency and contribution to grain yield. Critical Reviews in Plant Sciences 26: 116.CrossRefGoogle Scholar
Tang, Y, Wu, X, Li, C, Yang, W, Huang, M, Ma, X, Li, S (2017) Yield, growth, canopy traits and photosynthesis in high-yielding, synthetic hexaploid-derived wheats cultivars compared with non-synthetic wheats. Crop and Pasture Science 68: 115125.CrossRefGoogle Scholar
Tashiro, T and Wardlaw, IF (1990) The effect of high temperature at different stages of ripening on grain set, grain weight and grain dimensions in the semi-dwarf wheat ‘Banks’. Annals of Botany 65: 5161.CrossRefGoogle Scholar
Tripathi, S, Marker, S, Pandey, P, Jaiswal, K and Tiwari, D (2011) Relationship between some morphological and physiological traits with grain yield in bread wheat (Triticum aestivum L. em. Thell.). Trends in Applied Science Research 6: 10371045.Google Scholar
Tubiello, FN, Soussana, JF and Howden, SM (2007) Crop and pasture response to climate change. Proceedings of the National Academy of Sciences of the USA 104: 1968619690.CrossRefGoogle ScholarPubMed
Ugarte, C, Calderini, DF and Slafer, GA (2007) Grain weight and grain number responsiveness to pre-anthesis temperature in wheat, barley and triticale. Field Crops Research 100: 240248.CrossRefGoogle Scholar
Valkoun, JJ (2001) Wheat pre-breeding using wild progenitors. Euphytica 119: 1723.Google Scholar
van Ginkel, M and Ogbonnaya, F (2007) Novel genetic diversity from synthetic wheats in breeding cultivars for changing production conditions. Field Crops Research 104: 8694.CrossRefGoogle Scholar
Velásquez, AC, Castroverde, CDM and He, SY (2018) Plant–pathogen warfare under changing climate conditions. Current Biology 28: R619R634.CrossRefGoogle ScholarPubMed
Verma, V, Foulkes, M, Worland, A, Sylvester-Bradley, R, Caligari, P and Snape, J (2004) Mapping quantitative trait loci for flag leaf senescence as a yield determinant in winter wheat under optimal and drought- stressed environments. Euphytica 135: 255263.CrossRefGoogle Scholar
Verma, PN, Singh, BN, Singh, G, Singh, MK and Setter, TL (2014) Genetic diversity analysis for yield and other agronomic traits in bread wheat under water logged sodic soil condition. Journal of Wheat Research 6: 5158.Google Scholar
Vollenweider, P and Günthardt-Goerg, MS (2005) Diagnosis of abiotic and biotic stress factors using the visible symptoms in foliage. Environmental Pollution 137: 455465.CrossRefGoogle ScholarPubMed
Waines, J (1994) High temperature stress in wild wheats and spring wheats. Australian Journal of Plant Physiology 21: 715.Google Scholar
Wang, Y, Xi, W, Wang, Z, Wang, B, Xu, X and Han, M (2016) Contribution of ear photosynthesis to grain yield under rainfed and irrigation conditions for winter wheat cultivars released in the past 30 years in North China Plain. Journal of Integrative Agriculture 15: 22472256.CrossRefGoogle Scholar
Wardlaw, IF and Moncur, L (1995) The response of wheat to high temperature following anthesis. I. The rate and duration of kernel filling. Australian Journal of Plant Physiology 22: 391397.Google Scholar
Wardlaw, IF and Wrigley, CW (1994) Heat tolerance in temperate cereals: an overview. Australian Journal of Plant Physiology 21: 695703.Google Scholar
Wei, T and Simko, V (2017) R package ‘corrplot’: visualization of a correlation matrix.Google Scholar
Wheeler, TR, Craufurd, PQ, Ellis, RH, Porter, JR and Vara Prasad, PV (2000) Temperature variability and the yield of annual crops. Ecosystems and Environment 82: 159167.CrossRefGoogle Scholar
Wickham, H (2016) Ggplot2: Elegant Graphics for Data Analysis. Springer International Publishing: New York.Google Scholar
Wollenweber, B, Porter, JR and Schellberg, J (2003) Lack of interaction between extreme high-temperature events at vegetative and reproductive growth stages in wheat. Journal of Agronomy and Crop Science 189: 142150.CrossRefGoogle Scholar
Yang, J, Sears, RG, Gill, BS and Paulsen, GM (2002) Quantitative and molecular characterization of heat tolerance in hexaploid wheat. Euphytica 126: 275282.CrossRefGoogle Scholar
Zampieri, M, Ceglar, A, Dentener, F and Toreti, A (2017) Wheat yield loss attributable to heat waves, drought and water excess at the global, national and subnational scales. Environmental Research Letters 12: 064008.CrossRefGoogle Scholar
Zhao, C, Liu, B, Piao, S, Wang, X, Lobell, DB, Huang, Y, Huang, M, Yao, Y, Bassu, S, Ciais, P, Durand, J-L, Elliott, J, Ewert, F, Janssens, IA, Li, T, Lin, E, Liu, Q, Martre, P, Müller, C, Peng, S, Peñuelas, J, Ruane, AC, Wallach, D, Wang, T, Wu, D, Liu, Z, Zhu, Y, Zhu, Z and Asseng, S (2017) Temperature increase reduces global yields of major crops in four independent estimates. Proceedings of the National Academy of Sciences 114: 93269331.CrossRefGoogle ScholarPubMed
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