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Identification of water use efficient wheat genotypes with high yield for regions of depleting water resources in India

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  • Meena, Raj Pal
  • Karnam, Venkatesh
  • R, Sendhil
  • Rinki,
  • Sharma, R.K.
  • Tripathi, S.C.
  • Singh, Gyanendra Pratap

Abstract

Intensive cultivation of irrigated wheat in 30 m ha area is mainly causing the depletion of groundwater resources in India. This calls for urgent technological interventions to improve the water productivity of wheat for sustaining the profitability of farmers. Seventy-one genetically diverse wheat genotypes were screened for high water use efficiency (WUE) under limited soil moisture level at 60% of Cumulative Pan Evaporation (CPE) during 2015-16. Out of these best performing sixteen high WUE genotypes were shortlisted for a detailed field study during 2016-17 and 2017-18. The limited irrigation treatments were imposed through micro irrigation system for precise delivery of the estimated quantity of water to the root zone. Water use efficiency, grain yield (GY), above ground biomass (AGBM), harvest index (HI), thousand grain weight (TGW), tillers per meter square (TPM), SPAD chlorophyll meter reading (SCMR) and relative water content (RWC) were measured. Pearson correlation identified GY (r = 0.99), AGBM (r = 0.46), HI (r = 0.86), TGW (r = 0.52) and SCMR (r = 0.46) at post-anthesis as significant traits contributing to higher WUE. Tukey’s test of significance led ranking and GGE biplot analysis identified DBW 243 (2.40 kg m−3) as the best genotype for WUE. Better HI was the basis for increased WUE. The identified high WUE genotype could be a useful resource to researchers globally to develop water use efficient cultivars with high yield. Additionally, the associated traits on WUE could be used as a selection criterion in breeding wheat for limited water conditions. Adoption of superior WUE genotypes could directly reduce water consumption by 20%, further contributing to the reduced cost of cultivation (USD 42.6 ha-1) to farmers. Cultivation of identified genotypes in over 12 m ha wheat area of North Western Plains Zone of India could produce similar yields and can conserve 7728 million m3 of water year-1.

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  • Meena, Raj Pal & Karnam, Venkatesh & R, Sendhil & Rinki, & Sharma, R.K. & Tripathi, S.C. & Singh, Gyanendra Pratap, 2019. "Identification of water use efficient wheat genotypes with high yield for regions of depleting water resources in India," Agricultural Water Management, Elsevier, vol. 223(C), pages 1-1.
  • Handle: RePEc:eee:agiwat:v:223:y:2019:i:c:27
    DOI: 10.1016/j.agwat.2019.105709
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    1. Kumar Jha, Shiva & Ramatshaba, Tefo Steve & Wang, Guangshuai & Liang, Yueping & Liu, Hao & Gao, Yang & Duan, Aiwang, 2019. "Response of growth, yield and water use efficiency of winter wheat to different irrigation methods and scheduling in North China Plain," Agricultural Water Management, Elsevier, vol. 217(C), pages 292-302.
    2. Sidhu, H.S. & Jat, M.L. & Singh, Yadvinder & Sidhu, Ravneet Kaur & Gupta, Naveen & Singh, Parvinder & Singh, Pankaj & Jat, H.S. & Gerard, Bruno, 2019. "Sub-surface drip fertigation with conservation agriculture in a rice-wheat system: A breakthrough for addressing water and nitrogen use efficiency," Agricultural Water Management, Elsevier, vol. 216(C), pages 273-283.
    3. Sekhri, Sheetal, 2013. "Sustaining Groundwater: Role of Policy Reforms in Promoting Conservation in India," India Policy Forum, National Council of Applied Economic Research, vol. 9(1), pages 149-187.
    4. Kang, Shaozhong & Zhang, Lu & Liang, Yinli & Hu, Xiaotao & Cai, Huanjie & Gu, Binjie, 2002. "Effects of limited irrigation on yield and water use efficiency of winter wheat in the Loess Plateau of China," Agricultural Water Management, Elsevier, vol. 55(3), pages 203-216, June.
    5. Farré, I. & Faci, J.-M., 2009. "Deficit irrigation in maize for reducing agricultural water use in a Mediterranean environment," Agricultural Water Management, Elsevier, vol. 96(3), pages 383-394, March.
    6. Meena, Raj Pal & Karnam, Venkatesh & Tripathi, S.C. & Jha, Ankita & Sharma, R.K. & Singh, G.P., 2019. "Irrigation management strategies in wheat for efficient water use in the regions of depleting water resources," Agricultural Water Management, Elsevier, vol. 214(C), pages 38-46.
    7. Matthew Rodell & Isabella Velicogna & James S. Famiglietti, 2009. "Satellite-based estimates of groundwater depletion in India," Nature, Nature, vol. 460(7258), pages 999-1002, August.
    8. Zwart, Sander J. & Bastiaanssen, Wim G.M. & de Fraiture, Charlotte & Molden, David J., 2010. "A global benchmark map of water productivity for rainfed and irrigated wheat," Agricultural Water Management, Elsevier, vol. 97(10), pages 1617-1627, October.
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