Root depth: a trait to increase water use and yield of wheat

Autores
Severini, Alan David
Año de publicación
2015
Idioma
inglés
Tipo de recurso
tesis doctoral
Estado
versión aceptada
Colaborador/a o director/a de tesis
Watt, Michelle
Evans, John
Passioura, John
Richards, Richard
Descripción
Tesis de doctorado para obtener el grado de Doctor of Philosophy presentada en la Australian National University en noviembre de 2015
Crops with deeper roots could potentially capture more soil resources and as a consequence yield more. However, as sampling roots by soil coring is challenging, there are few examples of genetic diversity determined under field conditions. Canopy temperature, an indicator of transpiration, could be used instead of direct coring to screen for wheat varieties with increased access to deep water and hence deep roots in the field. In this thesis we aimed (i) to seek genetic diversity in rooting depth, root length density and relate these traits to yield in a wide range of triticale and wheat germplasm, and (ii) to test the usefulness of continuously-monitored canopy temperature and soil water status for phenotyping two commercial wheat varieties that differ in rooting depth. In the first set of field experiments, rooting depth, root length density and yield were measured in 34 wheat and 2 triticale varieties. Roots were sampled by soil-coring with a tractor-mounted hydraulic press and were later counted by the ‗core break‘ method. Root length density was predicted from root count density. In the second set of experiments, canopy temperature was measured with fixed infra-red thermometers, and soil water suction was determined with gypsum blocks buried at 20 cm intervals, from 20 to 160 cm depth. A crop water-stress index (CWSI) was calculated to normalise for the effects of vapour pressure deficit over canopy temperature. Soil water retention curves fitted to the soil of the site were used to convert soil water suction into soil water content. Shoot biomass and grain yield were estimated from 0.7 m2 samples per plot in all experiments. In the experiments seeking genetic variability, we found that triticale produced deeper roots than commercial spring-wheat (p < 0.10), and shorter varieties produced deeper roots than taller varieties (p < 0.10). Moreover, rooting depth was related to shoot biomass (R2 = 0.66, p < 0.001) and grain yield (R2 = 0.56, p < 0.001) across experiments and genotypes but not between genotypes within the same experiment. In the experiments analysing canopy temperature and water-use continuously, differences in deep-root length were not statistically significant between the two varieties. The variety Gregory had greater root length at depths beneath 1 m, was cooler, used more water and that water was withdrawn from deeper soil layers than the other variety, Derrimut. Using CWSI gave better predictions of soil water status than canopy temperature per se. By taking up more water during grain filling, Gregory produced more yield at a rate of 54 kg ha-1 mm-1. CWSI did not correlate with day-to-day changes in water use. We conclude that (i) there is genetic diversity in rooting depth within triticale and wheat germplasm; (ii) by enabling the calculation of a CWSI, continuously measured canopy temperature allows phenotyping of root systems with superior deep water access.
Fil: Severini, Alan David. Instituto Nacional de Tecnología Agropecuaria (INTA). Estación Experimental Agropecuaria Pergamino; Argentina
Materia
Trigo
Uso del Agua
Rendimiento de Cultivos
Profundidad de Plantación
Raíces
Nivel de accesibilidad
acceso abierto
Condiciones de uso
http://creativecommons.org/licenses/by-nc-sa/4.0/
Repositorio
INTA Digital (INTA)
Institución
Instituto Nacional de Tecnología Agropecuaria
OAI Identificador
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spelling Root depth: a trait to increase water use and yield of wheatSeverini, Alan DavidTrigoUso del AguaRendimiento de CultivosProfundidad de PlantaciónRaícesTesis de doctorado para obtener el grado de Doctor of Philosophy presentada en la Australian National University en noviembre de 2015Crops with deeper roots could potentially capture more soil resources and as a consequence yield more. However, as sampling roots by soil coring is challenging, there are few examples of genetic diversity determined under field conditions. Canopy temperature, an indicator of transpiration, could be used instead of direct coring to screen for wheat varieties with increased access to deep water and hence deep roots in the field. In this thesis we aimed (i) to seek genetic diversity in rooting depth, root length density and relate these traits to yield in a wide range of triticale and wheat germplasm, and (ii) to test the usefulness of continuously-monitored canopy temperature and soil water status for phenotyping two commercial wheat varieties that differ in rooting depth. In the first set of field experiments, rooting depth, root length density and yield were measured in 34 wheat and 2 triticale varieties. Roots were sampled by soil-coring with a tractor-mounted hydraulic press and were later counted by the ‗core break‘ method. Root length density was predicted from root count density. In the second set of experiments, canopy temperature was measured with fixed infra-red thermometers, and soil water suction was determined with gypsum blocks buried at 20 cm intervals, from 20 to 160 cm depth. A crop water-stress index (CWSI) was calculated to normalise for the effects of vapour pressure deficit over canopy temperature. Soil water retention curves fitted to the soil of the site were used to convert soil water suction into soil water content. Shoot biomass and grain yield were estimated from 0.7 m2 samples per plot in all experiments. In the experiments seeking genetic variability, we found that triticale produced deeper roots than commercial spring-wheat (p < 0.10), and shorter varieties produced deeper roots than taller varieties (p < 0.10). Moreover, rooting depth was related to shoot biomass (R2 = 0.66, p < 0.001) and grain yield (R2 = 0.56, p < 0.001) across experiments and genotypes but not between genotypes within the same experiment. In the experiments analysing canopy temperature and water-use continuously, differences in deep-root length were not statistically significant between the two varieties. The variety Gregory had greater root length at depths beneath 1 m, was cooler, used more water and that water was withdrawn from deeper soil layers than the other variety, Derrimut. Using CWSI gave better predictions of soil water status than canopy temperature per se. By taking up more water during grain filling, Gregory produced more yield at a rate of 54 kg ha-1 mm-1. CWSI did not correlate with day-to-day changes in water use. We conclude that (i) there is genetic diversity in rooting depth within triticale and wheat germplasm; (ii) by enabling the calculation of a CWSI, continuously measured canopy temperature allows phenotyping of root systems with superior deep water access.Fil: Severini, Alan David. Instituto Nacional de Tecnología Agropecuaria (INTA). Estación Experimental Agropecuaria Pergamino; ArgentinaAustralian National UniversityWatt, MichelleEvans, JohnPassioura, JohnRichards, Richard2018-03-06T15:39:32Z2018-03-06T15:39:32Z2015-11info:eu-repo/semantics/doctoralThesisinfo:eu-repo/semantics/acceptedVersionhttp://purl.org/coar/resource_type/c_db06info:ar-repo/semantics/tesisDoctoralapplication/pdfhttp://hdl.handle.net/20.500.12123/1971https://openresearch-repository.anu.edu.au/handle/1885/117150https://doi.org/10.25911/5d7239a67be85enginfo:eu-repo/semantics/openAccesshttp://creativecommons.org/licenses/by-nc-sa/4.0/Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International (CC BY-NC-SA 4.0)reponame:INTA Digital (INTA)instname:Instituto Nacional de Tecnología Agropecuaria2025-10-16T09:29:06Zoai:localhost:20.500.12123/1971instacron:INTAInstitucionalhttp://repositorio.inta.gob.ar/Organismo científico-tecnológicoNo correspondehttp://repositorio.inta.gob.ar/oai/requesttripaldi.nicolas@inta.gob.arArgentinaNo correspondeNo correspondeNo correspondeopendoar:l2025-10-16 09:29:06.758INTA Digital (INTA) - Instituto Nacional de Tecnología Agropecuariafalse
dc.title.none.fl_str_mv Root depth: a trait to increase water use and yield of wheat
title Root depth: a trait to increase water use and yield of wheat
spellingShingle Root depth: a trait to increase water use and yield of wheat
Severini, Alan David
Trigo
Uso del Agua
Rendimiento de Cultivos
Profundidad de Plantación
Raíces
title_short Root depth: a trait to increase water use and yield of wheat
title_full Root depth: a trait to increase water use and yield of wheat
title_fullStr Root depth: a trait to increase water use and yield of wheat
title_full_unstemmed Root depth: a trait to increase water use and yield of wheat
title_sort Root depth: a trait to increase water use and yield of wheat
dc.creator.none.fl_str_mv Severini, Alan David
author Severini, Alan David
author_facet Severini, Alan David
author_role author
dc.contributor.none.fl_str_mv Watt, Michelle
Evans, John
Passioura, John
Richards, Richard
dc.subject.none.fl_str_mv Trigo
Uso del Agua
Rendimiento de Cultivos
Profundidad de Plantación
Raíces
topic Trigo
Uso del Agua
Rendimiento de Cultivos
Profundidad de Plantación
Raíces
dc.description.none.fl_txt_mv Tesis de doctorado para obtener el grado de Doctor of Philosophy presentada en la Australian National University en noviembre de 2015
Crops with deeper roots could potentially capture more soil resources and as a consequence yield more. However, as sampling roots by soil coring is challenging, there are few examples of genetic diversity determined under field conditions. Canopy temperature, an indicator of transpiration, could be used instead of direct coring to screen for wheat varieties with increased access to deep water and hence deep roots in the field. In this thesis we aimed (i) to seek genetic diversity in rooting depth, root length density and relate these traits to yield in a wide range of triticale and wheat germplasm, and (ii) to test the usefulness of continuously-monitored canopy temperature and soil water status for phenotyping two commercial wheat varieties that differ in rooting depth. In the first set of field experiments, rooting depth, root length density and yield were measured in 34 wheat and 2 triticale varieties. Roots were sampled by soil-coring with a tractor-mounted hydraulic press and were later counted by the ‗core break‘ method. Root length density was predicted from root count density. In the second set of experiments, canopy temperature was measured with fixed infra-red thermometers, and soil water suction was determined with gypsum blocks buried at 20 cm intervals, from 20 to 160 cm depth. A crop water-stress index (CWSI) was calculated to normalise for the effects of vapour pressure deficit over canopy temperature. Soil water retention curves fitted to the soil of the site were used to convert soil water suction into soil water content. Shoot biomass and grain yield were estimated from 0.7 m2 samples per plot in all experiments. In the experiments seeking genetic variability, we found that triticale produced deeper roots than commercial spring-wheat (p < 0.10), and shorter varieties produced deeper roots than taller varieties (p < 0.10). Moreover, rooting depth was related to shoot biomass (R2 = 0.66, p < 0.001) and grain yield (R2 = 0.56, p < 0.001) across experiments and genotypes but not between genotypes within the same experiment. In the experiments analysing canopy temperature and water-use continuously, differences in deep-root length were not statistically significant between the two varieties. The variety Gregory had greater root length at depths beneath 1 m, was cooler, used more water and that water was withdrawn from deeper soil layers than the other variety, Derrimut. Using CWSI gave better predictions of soil water status than canopy temperature per se. By taking up more water during grain filling, Gregory produced more yield at a rate of 54 kg ha-1 mm-1. CWSI did not correlate with day-to-day changes in water use. We conclude that (i) there is genetic diversity in rooting depth within triticale and wheat germplasm; (ii) by enabling the calculation of a CWSI, continuously measured canopy temperature allows phenotyping of root systems with superior deep water access.
Fil: Severini, Alan David. Instituto Nacional de Tecnología Agropecuaria (INTA). Estación Experimental Agropecuaria Pergamino; Argentina
description Tesis de doctorado para obtener el grado de Doctor of Philosophy presentada en la Australian National University en noviembre de 2015
publishDate 2015
dc.date.none.fl_str_mv 2015-11
2018-03-06T15:39:32Z
2018-03-06T15:39:32Z
dc.type.none.fl_str_mv info:eu-repo/semantics/doctoralThesis
info:eu-repo/semantics/acceptedVersion
http://purl.org/coar/resource_type/c_db06
info:ar-repo/semantics/tesisDoctoral
format doctoralThesis
status_str acceptedVersion
dc.identifier.none.fl_str_mv http://hdl.handle.net/20.500.12123/1971
https://openresearch-repository.anu.edu.au/handle/1885/117150
https://doi.org/10.25911/5d7239a67be85
url http://hdl.handle.net/20.500.12123/1971
https://openresearch-repository.anu.edu.au/handle/1885/117150
https://doi.org/10.25911/5d7239a67be85
dc.language.none.fl_str_mv eng
language eng
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
http://creativecommons.org/licenses/by-nc-sa/4.0/
Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International (CC BY-NC-SA 4.0)
eu_rights_str_mv openAccess
rights_invalid_str_mv http://creativecommons.org/licenses/by-nc-sa/4.0/
Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International (CC BY-NC-SA 4.0)
dc.format.none.fl_str_mv application/pdf
dc.publisher.none.fl_str_mv Australian National University
publisher.none.fl_str_mv Australian National University
dc.source.none.fl_str_mv reponame:INTA Digital (INTA)
instname:Instituto Nacional de Tecnología Agropecuaria
reponame_str INTA Digital (INTA)
collection INTA Digital (INTA)
instname_str Instituto Nacional de Tecnología Agropecuaria
repository.name.fl_str_mv INTA Digital (INTA) - Instituto Nacional de Tecnología Agropecuaria
repository.mail.fl_str_mv tripaldi.nicolas@inta.gob.ar
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