@ARTICLE{TreeBASE2Ref27363,
author = {Kebede Tadesse Muleta and Matthew N Rouse and Shery Rynearson and Xianming Chen and Bedada G Buta and Michael Pumphrey},
title = {Characterization of molecular diversity and genome-wide mapping of loci associated with resistance to stripe rust and stem rust in Ethiopian bread wheat accessions},
year = {2017},
keywords = {Bread wheat, stripe rust, stem rust, genetic resistance, genetic diversity, association mapping},
doi = {},
url = {http://},
pmid = {},
journal = {BMC Plant Biology},
volume = {},
number = {},
pages = {},
abstract = {Background: The narrow genetic basis of resistance in modern wheat cultivars and the strong selection response of pathogen populations have been responsible for periodic and devastating epidemics of the wheat rust diseases. Characterizing new sources of resistance and incorporating multiple genes into elite cultivars is the most widely accepted current mechanism to achieve durable varietal performance against changes in pathogen virulence. Here, we report a high-density molecular characterization and genome-wide association study (GWAS) of stripe rust and stem rust resistance in 190 Ethiopian bread wheat lines based on phenotypic data from multi-environment field trials and seedling resistance screening experiments. A total of 24,281 single nucleotide polymorphism (SNP) markers filtered from the wheat 90K iSelect genotyping assay was used to survey Ethiopian germplasm for population structure, genetic diversity and marker-trait associations.
Results: Upon screening for field resistance to stripe rust in the Pacific Northwest of the United States and Ethiopia over multiple growing seasons; and against multiple races of stripe rust and stem rust at seedling stage, eight accessions displayed resistance to all tested races of stem rust and field resistance to stripe rust at all environments. Our GWAS results show 15 loci were significantly associated with seedling and adult plant resistance to stripe rust at false discovery rate (FDR)-adjusted probability (P) <0.10. GWAS also detected 9 additional genomic regions significantly associated (FDR-adjusted P <0.10) with seedling resistance to stem rust in the Ethiopian wheat accessions. Many of the identified resistance loci were mapped close to previously identified rust resistance genes; however, three on the short arms of chromosomes 5A and 7B for stripe rust resistance and two on chromosomes 3B and 7B for stem rust resistance may be novel.
Conclusion: Our results demonstrate that considerable genetic variation resides within the landrace accessions that can be utilized to broaden the genetic base of rust resistance in wheat breeding germplasm. The molecular markers identified in this study should be useful in efficiently targeting the associated resistance loci in marker-assisted breeding for rust resistance in Ethiopia and other countries.
}
}
Taxa for matrix 57981 of Study 21219

Citation title:
"Characterization of molecular diversity and genome-wide mapping of loci associated with resistance to stripe rust and stem rust in Ethiopian bread wheat accessions".

Study name:
"Characterization of molecular diversity and genome-wide mapping of loci associated with resistance to stripe rust and stem rust in Ethiopian bread wheat accessions".

This study is part of submission 21219
(Status: Published).
Taxa
Return to matrix row view
ID |
Taxon Label |
NCBI taxid |
uBIO namebankID |
4361146 |
Anteaglonium rubescens MG912909_OR |
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4361148 |
Anteaglonium rubescens MG912910_OR1 |
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4361132 |
Anteaglonium rubescens MG912911_OR2 |
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4361122 |
Anteaglonium sp. CSN641 ITS4 CS025 |
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4361134 |
Anteaglonium sp. CSN642 ITS4 CS022 |
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4361118 |
Anteaglonium sp. CSN649 ITS4 CS022 |
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4361114 |
Antealophiotrema brunneosporum LC194474_CBS_123095 |
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4361154 |
Aquasubmersa japonica LC061591_KT2813 |
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4361139 |
Aquasubmersa mircensis JX276954_MFLUCC11_0401 |
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4361116 |
Atrocalyx acutisporus LC194475_KT_2436 |
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4361145 |
Atrocalyx asturiensis MG912912_OF |
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4361119 |
Atrocalyx lignicola LC194476_CBS_122364 |
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4361135 |
Crassimassarina macrospora LC194478_KT_1764 |
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4361127 |
Cryptoclypeus oxysporus LC194479_KT_2772 |
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4361138 |
Cryptoclypeus ryukyuensis LC194481_KT_3534 |
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4361144 |
Cryptocoryneum akitaense LC096154_KT3019 |
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4361125 |
Cryptocoryneum brevicondensatum LC096155_yone152 |
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4361115 |
Cryptocoryneum congregatum LC096159_KT2892 |
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4361133 |
Cryptocoryneum japonicum LC096162_KT3300 |
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4361149 |
Cryptocoryneum longicondensatum LC096166_KT2913 |
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4361151 |
Cryptocoryneum paracondensatum LC096169_KT3241 |
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4361137 |
Flammeascoma bambusae KP744440_MFLUCC_10_0551 |
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4361123 |
Flammeascoma lignicola KT324582_MFLUCC_10_0128a |
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4361124 |
Galeaticarpa aomoriensis LC194482_KT_2563 |
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4361143 |
Hermatomyces sp. KT2016 1 LC194483 KH 361 |
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4361120 |
Hermatomyces tectonae KU144917_MFLUCC_14_1140 |
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4361150 |
Hermatomyces thailandica KU144920_MFLUCC_14_1143 |
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4361152 |
Lophiotrema boreale LC194491_CBS_114422 |
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4361126 |
Lophiotrema eburnoides LC001709_KT1424_1 |
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4361136 |
Lophiotrema fallopiae LC149913_KT_2748 |
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4361153 |
Lophiotrema neoarundinaria AB524786_KT_856 |
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4361147 |
Lophiotrema nucula LC194497_CBS_627.86 |
0
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1450868
|
4361142 |
Lophiotrema sp. neohysterioides LC194493 KH 17 |
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4361129 |
Lophiotrema vagabundum LC194502_CBS_113975 |
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3918148
|
4361113 |
Polyplosphaeria fusca AB524789_KT_1616 |
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4361121 |
Pseudocryptoclypeus yakushimensis LC194504_KT_2186 |
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4361131 |
Pseudolophiotrema elymicola LC194505_KT_1450 |
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4361117 |
Pseudotetraploa curviappendiculata AB524792_HC_4930 |
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4361130 |
Quadricrura septentrionalis AB524799_HC_4983 |
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4361140 |
Sigarispora arundinis AJ496633_CBS_621.86 |
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4361128 |
Tetraploa sasicola AB524807_KT_563 |
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4361141 |
Triplosphaeria maxima AB524812_KT_870 |
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