@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 58028 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 |
4363656 |
Aequabiliella effusa CBS_120883 |
|
|
4363607 |
Aequabiliella palatina JKI_Ap36 |
|
|
4363759 |
Celerioriella dura CBS_120882 |
|
|
4363686 |
Celerioriella petrophiles CPC_29256 |
|
|
4363712 |
Celerioriella prunicola CBS_120876 |
|
|
4363844 |
Celerioriella sp. CSN801 |
|
|
4363851 |
Celerioriella umnqumae CSN1091 |
|
|
4363853 |
Celothelium cinchonarum F_17105_f |
364718
|
1377406
|
4363769 |
Dolabra nepheliae CBS_123297 |
0
|
3208132
|
4363860 |
Minutiella pruni avium_CBS_145513 |
|
|
4363760 |
Minutiella simplex JKI_Jn27 |
|
|
4363696 |
Minutiella tardicola CBS_121757 |
|
|
4363734 |
Moristroma germanicum JKI_Feb06 |
|
|
4363762 |
Moristroma japonicum BN1674 |
236306
|
5974063
|
4363861 |
Moristroma palatinum JKI_Au02 |
|
|
4363704 |
Moristroma quercinum BN1678 |
236305
|
5993053
|
4363623 |
Neophaeomoniella constricta JKI_Mz35 |
|
|
4363854 |
Neophaeomoniella corymbiae CBS_145092 |
|
|
4363862 |
Neophaeomoniella eucalypti CPC_25161 |
|
|
4363845 |
Neophaeomoniella eucalyptigena CBS_145093 |
|
|
4363605 |
Neophaeomoniella niveniae CBS_131316 |
|
|
4363685 |
Neophaeomoniella ossiformis JKI_May03 |
|
|
4363672 |
Neophaeomoniella zymoides CBS_114904 |
|
|
4363847 |
Neophaeomoniella zymoides CBS_121168 |
|
|
4363850 |
Paraphaeoisaria alabamensis CBS_101.77A |
|
|
4363644 |
Paraphaeomoniella capensis CBS_123535 |
|
|
4363720 |
Phaeomoniella chlamydospora CBS_229.95 |
65419
|
1408795
|
4363848 |
Phaeomoniella chlamydospora STEU7536 |
65419
|
1408795
|
4363748 |
Phaeomoniella pinifoliorum CBS_114903 |
|
|
4363618 |
Pseudophaeomoniella oleae CBS_139191 |
|
|
4363624 |
Pseudophaeomoniella oleicola CBS_139192 |
|
|
4363846 |
Pseuodphaeomoniella globosa CSN185 |
|
|
4363676 |
Rhynchostoma proteae CBS_112051 |
225611
|
4027821
|
4363599 |
Strelitziana cliviae CPC_19822 |
|
|
4363613 |
Strelitziana malaysiana CPC_24874 |
|
|
4363852 |
Vredendaliella oleae PMM1193 |
|
|
4363688 |
Xenocylindrosporium kirstenboschense CBS_125545 |
|
|
4363857 |
Xenocylindrosporium margaritas CSN1179 |
|
|
4363858 |
Xenocylindrosporium sp. CFJS 2015c CSN1184 |
|
|
4363856 |
Xenocylindrosporium sp. CFJS 2015e CSN1222 |
|
|
4363859 |
Xenocylindrosporium sp. CSN1174 28S |
|
|
4363855 |
Xenocylindrosporium sp. CSN1180 |
|
|
4363849 |
Xenocylindrosporium sp. CSN1191 28S |
|
|