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dc.date.accessioned2024-09-02T12:42:01Z
dc.date.available2024-09-02T12:42:01Z
dc.date.issued2024-05-16
dc.identifierdoi:10.17170/kobra-2024082910747
dc.identifier.urihttp://hdl.handle.net/123456789/16013
dc.description.sponsorshipGefördert im Rahmen des Projekts DEALger
dc.language.isoeng
dc.rightsNamensnennung 4.0 International*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subjectclimate changeeng
dc.subjectdroughteng
dc.subjectheat stresseng
dc.subjectleaf morphologyseng
dc.subjectTriticaleeng
dc.subjectTriticum durumeng
dc.subjectTriticum aestivumeng
dc.subjectscanning electron microscopyeng
dc.subject.ddc580
dc.subject.ddc630
dc.titleDissecting wheat above-ground architecture for enhanced water use efficiency and grain yield in the subtropicseng
dc.typeAufsatz
dcterms.abstractBackground Growing wheat under climate change scenarios challenges, scientists to develop drought and heat-tolerant genotypes. The adaptive traits should therefore be explored and engineered for this purpose. Thus, this study aimed to dissect surface traits and optimizing the leaf architecture to enhance water use efficiency (WUE) and grain yield. Twenty-six wheat genotypes were assessed for five novel leaf traits (NLTs: leaf prickle hairs, groove type, rolling, angle and wettability) under normal, drought and heat conditions following triplicated factorial randomized complete block design (RCBD). The data for NLTs, physiological traits (stomatal conductance, WUE, transpiration, and photosynthesis), and standard morphological and yield traits were recorded. Leaves were sampled at the stem elongation stage (Zadoks 34) to measure the leaf water content (%), contact angle, and to obtain pictures through scanning electron microscopy (SEM). The air moisture harvesting efficiency was evaluated for five selected genotypes. The ideotype concept was applied to evaluate the best-performing genotypes. Results The correlation analysis indicated that long leaf prickle hairs (> 100 μm), short stomatal aperture and density (40–60 mm− 2), inward to spiral leaf rolling, medium leaf indentation, low contact angle hysteresis (< 10°), and cuticular wax were positively associated with WUE. This, in turn, was significantly correlated to grain yield. Thus, the genotypes (E-1) with these traits and alternate leaf wettability had maximum grain yield (502 g m− 2) and WUE supported with high photosynthesis rate, and relative water content (94 and 75% under normal and stress conditions, respectively). However, the genotype (1-hooded) with dense leaf hairs on edges but droopy leaves, spiral leaf rolling, and lighter groove, also performed better in terms of grain yield (450 g m− 2) under heat stress conditions by maintaining high photosynthesis and WUE with low stomatal conductance and transpiration rate. Conclusion The SEM analysis verified that the density of hairs on the leaf surface and epicuticular wax contributes towards alternate wettability patterns thereby increasing the water-use efficiency and yield of the wheat plant. This study paves a way towards screening and and developing heat and drought-tolerant cultivars that are water-saving and climate-resilient.eng
dcterms.accessRightsopen access
dcterms.creatorHakeem, Sadia
dcterms.creatorAli, Zulfiqar
dcterms.creatorSaddique, Muhammad Abu Bakar
dcterms.creatorHabib-ur-Rahman, Muhammad
dcterms.creatorWiehle, Martin
dc.relation.doidoi:10.1186/s40529-024-00419-x
dc.subject.swdKlimaänderungger
dc.subject.swdDürreger
dc.subject.swdHitzestressger
dc.subject.swdBlattger
dc.subject.swdMorphologie <Biologie>ger
dc.subject.swdTriticaleger
dc.subject.swdHartweizenger
dc.subject.swdWeizenger
dc.subject.swdRasterelektronenmikroskopieger
dc.type.versionpublishedVersion
dcterms.source.identifiereissn:1999-3110
dcterms.source.journalBotanical Studieseng
dcterms.source.volumeVolume 65
kup.iskupfalse
dcterms.source.articlenumber13


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