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Ecophysiological Responses of Tall Wheatgrass Germplasm to Drought and Salinity

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Journal Plants (Basel)
Date 2022 Jun 23
PMID 35736699
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Abstract

Tall wheatgrass ( (Podp.) Barkworth and D.R. Dewey) is an important, highly salt-tolerant C3 forage grass. The objective of this work was to learn about the ecophysiological responses of accessions from different environmental origins under drought and salinity conditions, to provide information for selecting superior germplasm under combined stress in tall wheatgrass. Four accessions (P3, P4, P5, P9) were irrigated using combinations of three salinity levels (0, 0.1, 0.3 M NaCl) and three drought levels (100%, 50%, 30% water capacity) over 90 days in a greenhouse. The control treatment showed the highest total biomass, but water-use efficiency (WUE), δC, proline, N concentration, leaf length, and tiller density were higher under moderate drought or/and salinity stress than under control conditions. In tall wheatgrass, K functions as an osmoregulator under drought, attenuated by salinity, and Na and Cl function as osmoregulators under salinity and drought, while proline is an osmoprotector under both stresses. P3 and P9, from environments with mild/moderate stress, prioritized reproductive development, with high evapotranspiration and the lowest WUE and δC values. P4 and P5, from more stressful environments, prioritized vegetative development through tillering, showing the lowest evapotranspiration, the highest δC values, and different mechanisms for limiting transpiration. The δC value, leaf biomass, tiller density, and leaf length had high broad-sense heritability (H), while the Na/K ratio had medium H. In conclusion, the combined use of the δC value, Na/K ratio, and canopy structural variables can help identify accessions that are well-adapted to drought and salinity, also considering the desirable plant characteristics. Tall wheatgrass stress tolerance could be used to expand forage production under a changing climate.

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References
1.
Shah S, Li Z, Yan H, Shi L, Zhou B . Comparative Study of the Effects of Salinity on Growth, Gas Exchange, N Accumulation and Stable Isotope Signatures of Forage Oat ( L.) Genotypes. Plants (Basel). 2020; 9(8). PMC: 7464733. DOI: 10.3390/plants9081025. View

2.
Colmer T, Flowers T, Munns R . Use of wild relatives to improve salt tolerance in wheat. J Exp Bot. 2006; 57(5):1059-78. DOI: 10.1093/jxb/erj124. View

3.
Condon A, Richards R, Rebetzke G, Farquhar G . Breeding for high water-use efficiency. J Exp Bot. 2004; 55(407):2447-60. DOI: 10.1093/jxb/erh277. View

4.
Taleisnik E, Rodriguez A, Bustos D, Erdei L, Ortega L, Senn M . Leaf expansion in grasses under salt stress. J Plant Physiol. 2009; 166(11):1123-40. DOI: 10.1016/j.jplph.2009.03.015. View

5.
Ortega L, Taleisnik E . Elongation growth in leaf blades of Chloris gayana under saline conditions. J Plant Physiol. 2003; 160(5):517-22. DOI: 10.1078/0176-1617-00827. View