Applied phenomics and genomics for improving barley yellow dwarf resistance in winter wheat.

SILVA, P. - EVERS, B. - KIEFFABER, A. - WANG, X. - BROWN, R. - GAO, L. - FRITZ, A. - CRAIN, J. - POLAND, J.

Resumen:

Abstract:Barley yellow dwarf (BYD) is one of the major viral diseases of cereals. Phenotyping BYD in wheat is extremely challenging due to similarities to other biotic and abiotic stresses. Breeding for resistance is additionally challenging as the wheat primary germplasm pool lacks genetic resistance, with most of the few resistance genes named to date originating from a wild relative species. The objectives of this study were to, i) evaluate the use of high-throughput phenotyping (HTP) from unmanned aerial systems to improve BYD assessment and selection, ii) identify genomic regions associated with BYD resistance, and iii) evaluate genomic prediction models ability to predict BYD resistance. Up to 107 wheat lines were phenotyped during each of five field seasons under both insecticide treated and untreated plots. Across all seasons, BYD severity was lower with the insecticide treatment and plant height (PTHTM) and grain yield (GY) showed increased values relative to untreated entries. Only 9.2% of the lines were positive for the presence of the translocated segment carrying resistance gene Bdv2 on chromosome 7DL. Despite the low frequency, this region was identified through association mapping. Furthermore, we mapped a potentially novel genomic region for resistance on chromosome 5AS. Given the variable heritability of the trait (0.211 ? 0.806), we obtained relatively good predictive ability for BYD severity ranging between 0.06 ? 0.26. Including Bdv2 on the predictive model had a large effect for predicting BYD but almost no effect for PTHTM and GY. This study was the first attempt to characterize BYD using field-HTP and apply GS to predict the disease severity. These methods have the potential to improve BYD characterization and identifying new sources of resistance will be crucial for delivering BYD resistant germplasm.


Detalles Bibliográficos
2022
Barley yellow dwarf (BYD)
High-throughput Phenotyping (HTP)
Triticum aestivum
Virus
Resistance
Tolerance
Genomic Selection (GS)
Inglés
Instituto Nacional de Investigación Agropecuaria
AINFO
http://www.ainfo.inia.uy/consulta/busca?b=pc&id=62870&biblioteca=vazio&busca=62870&qFacets=62870
Acceso abierto
_version_ 1805580526519582720
author SILVA, P.
author2 EVERS, B.
KIEFFABER, A.
WANG, X.
BROWN, R.
GAO, L.
FRITZ, A.
CRAIN, J.
POLAND, J.
author2_role author
author
author
author
author
author
author
author
author_facet SILVA, P.
EVERS, B.
KIEFFABER, A.
WANG, X.
BROWN, R.
GAO, L.
FRITZ, A.
CRAIN, J.
POLAND, J.
author_role author
bitstream.checksum.fl_str_mv 305b3387d2efd0bc08dd6dcb8bb17178
bitstream.checksumAlgorithm.fl_str_mv MD5
bitstream.url.fl_str_mv https://redi.anii.org.uy/jspui/bitstream/20.500.12381/2160/1/sword-2022-10-20T23%3a02%3a29.original.xml
collection AINFO
dc.creator.none.fl_str_mv SILVA, P.
EVERS, B.
KIEFFABER, A.
WANG, X.
BROWN, R.
GAO, L.
FRITZ, A.
CRAIN, J.
POLAND, J.
dc.date.accessioned.none.fl_str_mv 2022-10-21T02:02:29Z
dc.date.available.none.fl_str_mv 2022-10-21T02:02:29Z
dc.date.issued.none.fl_str_mv 2022
dc.date.updated.none.fl_str_mv 2022-10-21T02:02:29Z
dc.description.abstract.none.fl_txt_mv Abstract:Barley yellow dwarf (BYD) is one of the major viral diseases of cereals. Phenotyping BYD in wheat is extremely challenging due to similarities to other biotic and abiotic stresses. Breeding for resistance is additionally challenging as the wheat primary germplasm pool lacks genetic resistance, with most of the few resistance genes named to date originating from a wild relative species. The objectives of this study were to, i) evaluate the use of high-throughput phenotyping (HTP) from unmanned aerial systems to improve BYD assessment and selection, ii) identify genomic regions associated with BYD resistance, and iii) evaluate genomic prediction models ability to predict BYD resistance. Up to 107 wheat lines were phenotyped during each of five field seasons under both insecticide treated and untreated plots. Across all seasons, BYD severity was lower with the insecticide treatment and plant height (PTHTM) and grain yield (GY) showed increased values relative to untreated entries. Only 9.2% of the lines were positive for the presence of the translocated segment carrying resistance gene Bdv2 on chromosome 7DL. Despite the low frequency, this region was identified through association mapping. Furthermore, we mapped a potentially novel genomic region for resistance on chromosome 5AS. Given the variable heritability of the trait (0.211 ? 0.806), we obtained relatively good predictive ability for BYD severity ranging between 0.06 ? 0.26. Including Bdv2 on the predictive model had a large effect for predicting BYD but almost no effect for PTHTM and GY. This study was the first attempt to characterize BYD using field-HTP and apply GS to predict the disease severity. These methods have the potential to improve BYD characterization and identifying new sources of resistance will be crucial for delivering BYD resistant germplasm.
dc.identifier.none.fl_str_mv http://www.ainfo.inia.uy/consulta/busca?b=pc&id=62870&biblioteca=vazio&busca=62870&qFacets=62870
dc.language.iso.none.fl_str_mv en
eng
dc.rights.es.fl_str_mv Acceso abierto
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:AINFO
instname:Instituto Nacional de Investigación Agropecuaria
instacron:Instituto Nacional de Investigación Agropecuaria
dc.subject.none.fl_str_mv Barley yellow dwarf (BYD)
High-throughput Phenotyping (HTP)
Triticum aestivum
Virus
Resistance
Tolerance
Genomic Selection (GS)
dc.title.none.fl_str_mv Applied phenomics and genomics for improving barley yellow dwarf resistance in winter wheat.
dc.type.none.fl_str_mv Article
PublishedVersion
info:eu-repo/semantics/article
dc.type.version.none.fl_str_mv info:eu-repo/semantics/publishedVersion
description Abstract:Barley yellow dwarf (BYD) is one of the major viral diseases of cereals. Phenotyping BYD in wheat is extremely challenging due to similarities to other biotic and abiotic stresses. Breeding for resistance is additionally challenging as the wheat primary germplasm pool lacks genetic resistance, with most of the few resistance genes named to date originating from a wild relative species. The objectives of this study were to, i) evaluate the use of high-throughput phenotyping (HTP) from unmanned aerial systems to improve BYD assessment and selection, ii) identify genomic regions associated with BYD resistance, and iii) evaluate genomic prediction models ability to predict BYD resistance. Up to 107 wheat lines were phenotyped during each of five field seasons under both insecticide treated and untreated plots. Across all seasons, BYD severity was lower with the insecticide treatment and plant height (PTHTM) and grain yield (GY) showed increased values relative to untreated entries. Only 9.2% of the lines were positive for the presence of the translocated segment carrying resistance gene Bdv2 on chromosome 7DL. Despite the low frequency, this region was identified through association mapping. Furthermore, we mapped a potentially novel genomic region for resistance on chromosome 5AS. Given the variable heritability of the trait (0.211 ? 0.806), we obtained relatively good predictive ability for BYD severity ranging between 0.06 ? 0.26. Including Bdv2 on the predictive model had a large effect for predicting BYD but almost no effect for PTHTM and GY. This study was the first attempt to characterize BYD using field-HTP and apply GS to predict the disease severity. These methods have the potential to improve BYD characterization and identifying new sources of resistance will be crucial for delivering BYD resistant germplasm.
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repository.name.fl_str_mv AINFO - Instituto Nacional de Investigación Agropecuaria
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rights_invalid_str_mv Acceso abierto
spelling 2022-10-21T02:02:29Z2022-10-21T02:02:29Z20222022-10-21T02:02:29Zhttp://www.ainfo.inia.uy/consulta/busca?b=pc&id=62870&biblioteca=vazio&busca=62870&qFacets=62870Abstract:Barley yellow dwarf (BYD) is one of the major viral diseases of cereals. Phenotyping BYD in wheat is extremely challenging due to similarities to other biotic and abiotic stresses. Breeding for resistance is additionally challenging as the wheat primary germplasm pool lacks genetic resistance, with most of the few resistance genes named to date originating from a wild relative species. The objectives of this study were to, i) evaluate the use of high-throughput phenotyping (HTP) from unmanned aerial systems to improve BYD assessment and selection, ii) identify genomic regions associated with BYD resistance, and iii) evaluate genomic prediction models ability to predict BYD resistance. Up to 107 wheat lines were phenotyped during each of five field seasons under both insecticide treated and untreated plots. Across all seasons, BYD severity was lower with the insecticide treatment and plant height (PTHTM) and grain yield (GY) showed increased values relative to untreated entries. Only 9.2% of the lines were positive for the presence of the translocated segment carrying resistance gene Bdv2 on chromosome 7DL. Despite the low frequency, this region was identified through association mapping. Furthermore, we mapped a potentially novel genomic region for resistance on chromosome 5AS. Given the variable heritability of the trait (0.211 ? 0.806), we obtained relatively good predictive ability for BYD severity ranging between 0.06 ? 0.26. Including Bdv2 on the predictive model had a large effect for predicting BYD but almost no effect for PTHTM and GY. This study was the first attempt to characterize BYD using field-HTP and apply GS to predict the disease severity. These methods have the potential to improve BYD characterization and identifying new sources of resistance will be crucial for delivering BYD resistant germplasm.https://hdl.handle.net/20.500.12381/2160enenginfo:eu-repo/semantics/openAccessAcceso abiertoBarley yellow dwarf (BYD)High-throughput Phenotyping (HTP)Triticum aestivumVirusResistanceToleranceGenomic Selection (GS)Applied phenomics and genomics for improving barley yellow dwarf resistance in winter wheat.ArticlePublishedVersioninfo:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionreponame:AINFOinstname:Instituto Nacional de Investigación Agropecuariainstacron:Instituto Nacional de Investigación AgropecuariaSILVA, P.EVERS, B.KIEFFABER, A.WANG, X.BROWN, R.GAO, L.FRITZ, A.CRAIN, J.POLAND, J.SWORDsword-2022-10-20T23:02:29.original.xmlOriginal SWORD entry documentapplication/octet-stream3322https://redi.anii.org.uy/jspui/bitstream/20.500.12381/2160/1/sword-2022-10-20T23%3a02%3a29.original.xml305b3387d2efd0bc08dd6dcb8bb17178MD5120.500.12381/21602022-10-20 23:02:30.155oai:redi.anii.org.uy:20.500.12381/2160Gobiernohttp://inia.uyhttps://redi.anii.org.uy/oai/requestlorrego@inia.org.uyUruguayopendoar:2022-10-21T02:02:30AINFO - Instituto Nacional de Investigación Agropecuariafalse
spellingShingle Applied phenomics and genomics for improving barley yellow dwarf resistance in winter wheat.
SILVA, P.
Barley yellow dwarf (BYD)
High-throughput Phenotyping (HTP)
Triticum aestivum
Virus
Resistance
Tolerance
Genomic Selection (GS)
status_str publishedVersion
title Applied phenomics and genomics for improving barley yellow dwarf resistance in winter wheat.
title_full Applied phenomics and genomics for improving barley yellow dwarf resistance in winter wheat.
title_fullStr Applied phenomics and genomics for improving barley yellow dwarf resistance in winter wheat.
title_full_unstemmed Applied phenomics and genomics for improving barley yellow dwarf resistance in winter wheat.
title_short Applied phenomics and genomics for improving barley yellow dwarf resistance in winter wheat.
title_sort Applied phenomics and genomics for improving barley yellow dwarf resistance in winter wheat.
topic Barley yellow dwarf (BYD)
High-throughput Phenotyping (HTP)
Triticum aestivum
Virus
Resistance
Tolerance
Genomic Selection (GS)
url http://www.ainfo.inia.uy/consulta/busca?b=pc&id=62870&biblioteca=vazio&busca=62870&qFacets=62870