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1.
Theor Appl Genet ; 126(10): 2427-49, 2013 Oct.
Article in English | MEDLINE | ID: mdl-23955314

ABSTRACT

Over thirty publications during the last 10 years have identified more than 140 QTLs for stripe rust resistance in wheat. It is likely that many of these QTLs are identical genes that have been spread through plant breeding into diverse backgrounds through phenotypic selection under stripe rust epidemics. Allelism testing can be used to differentiate genes in similar locations but in different genetic backgrounds; however, this is problematic for QTL studies where multiple loci segregate from any one parent. This review utilizes consensus maps to illustrate important genomic regions that have had effects against stripe rust in wheat, and although this methodology cannot distinguish alleles from closely linked genes, it does highlight the extent of genetic diversity for this trait and identifies the most valuable loci and the parents possessing them for utilization in breeding programs. With the advent of cheaper, high throughput genotyping technologies, it is envisioned that there will be many more publications in the near future describing ever more QTLs. This review sets the scene for the coming influx of data and will quickly enable researchers to identify new loci in their given populations.


Subject(s)
Basidiomycota/physiology , Disease Resistance/immunology , Plant Diseases/microbiology , Quantitative Trait Loci/genetics , Triticum/genetics , Triticum/microbiology , Chromosome Mapping , Disease Resistance/genetics , Plant Diseases/genetics , Plant Diseases/immunology , Triticum/immunology
2.
Theor Appl Genet ; 126(7): 1721-32, 2013 Jul.
Article in English | MEDLINE | ID: mdl-23558982

ABSTRACT

Chapio is a spring wheat developed by CIMMYT in Mexico by a breeding program that focused on multigenic resistances to leaf rust and stripe rust. A population consisting of 277 recombinant inbred lines (RILs) was developed by crossing Chapio with Avocet. The RILs were genotyped with DArT markers (137 randomly selected RILs) and bulked segregant analysis conducted to supplement the map with informative SSR markers. The final map consisted of 264 markers. Phenotyping against stripe rust was conducted for three seasons in Toluca, Mexico and at three sites over two seasons (total of four environments) in Sichuan Province, China. Significant loci across the two inter-continental regions included Lr34/Yr18 on 7DS, Sr2/Yr30 on 3BS, and a QTL on 3D. There were significant genotype × environment interactions with resistance gene Yr31 on 2BS being effective in most of the Toluca environments; however, a late incursion of a virulent pathotype in 2009 rendered this gene ineffective. This locus also had no effect in China. Conversely, a 5BL locus was only effective in the Chinese environments. There were also complex additive interactions. In the Mexican environments, Yr31 suppressed the additive effect of Yr30 and the 3D locus, but not of Lr34/Yr18, while in China, the 3D and 5BL loci were generally not additive with each other, but were additive when combined with other loci. These results indicate the importance of maintaining diverse, multi-genic resistances as Chapio had stable inter-continental resistance despite the fact that there were QTLs that were not effective in either one or the other region.


Subject(s)
Disease Resistance/genetics , Quantitative Trait Loci , Triticum/genetics , China , Crosses, Genetic , Environment , Genetic Markers , Genotype , Mexico , Plant Diseases/microbiology , Triticum/microbiology
3.
Theor Appl Genet ; 124(7): 1283-94, 2012 May.
Article in English | MEDLINE | ID: mdl-22274764

ABSTRACT

Leaf rust and stripe rust are important diseases of wheat world-wide and deployment of cultivars with genetic resistance is an effective and environmentally sound control method. The use of minor, additive genes conferring adult plant resistance (APR) has been shown to provide resistance that is durable. The wheat cultivar 'Pastor' originated from the CIMMYT breeding program that focuses on minor gene-based APR to both diseases by selecting and advancing generations alternately under leaf rust and stripe rust pressures. As a consequence, Pastor has good resistance to both rusts and was used as the resistant parent to develop a mapping population by crossing with the susceptible 'Avocet'. All 148 F(5) recombinant inbred lines were evaluated under artificially inoculated epidemic environments for leaf rust (3 environments) and stripe rust (4 environments, 2 of which represent two evaluation dates in final year due to the late build-up of a new race virulent to Yr31) in Mexico. Map construction and QTL analysis were completed with 223 polymorphic markers on 84 randomly selected lines in the population. Pastor contributed Yr31, a moderately effective race-specific gene for stripe rust resistance, which was overcome during this study, and this was clearly shown in the statistical analysis. Linked or pleiotropic chromosomal regions contributing to resistance against both pathogens included Lr46/Yr29 on 1BL, the Yr31 region on 2BS, and additional minor genes on 5A, 6B and 7BL. Other minor genes for leaf rust resistance were located on 1B, 2A and 2D and for stripe rust on 1AL, 1B, 3A, 3B, 4D, 6A, 7AS and 7AL. The 1AL, 1BS and 7AL QTLs are in regions that were not identified previously as having QTLs for stripe rust resistance. The development of uniform and severe epidemics facilitated excellent phenotyping, and when combined with multi-environment analysis, resulted in the relatively large number of QTLs identified in this study.


Subject(s)
Plant Diseases/immunology , Quantitative Trait Loci , Triticum/genetics , Basidiomycota/pathogenicity , Breeding , Crosses, Genetic , Disease Resistance/genetics , Genes, Plant , Plant Diseases/microbiology , Triticum/immunology , Triticum/microbiology
4.
Theor Appl Genet ; 116(7): 1027-34, 2008 May.
Article in English | MEDLINE | ID: mdl-18335201

ABSTRACT

Rust diseases are a major cause of yield loss in wheat worldwide, and are often controlled through the incorporation of resistance genes using conventional phenotypic selection methods. Slow-rusting resistance genes are expressed quantitatively and are typically small in genetic effect thereby requiring multiple genes to provide adequate protection against pathogens. These effects are valuable and are generally considered to confer durable resistance. Therefore an understanding of the chromosomal locations of such genes and their biological effects are important in order to ensure they are suitably deployed in elite germplasm. Attila is an important wheat grown throughout the world and is used as a slow-rusting donor in international spring wheat breeding programs. This study identified chromosomal regions associated with leaf rust and stripe rust resistances in a cross between Attila and a susceptible parent, Avocet-S, evaluated over 3 years in the field. Genotypic variation for both rusts was large and repeatable with line-mean heritabilities of 94% for leaf rust resistance and 87% for stripe rust. Three loci, including Lr46/Yr29 on chromosome 1BL, were shown to provide resistance to leaf rust whereas six loci with small effects conferred stripe rust resistance, with a seventh locus having an effect only by epistasis. Disease scoring over three different years enabled inferences to be made relating to stripe rust pathogen strains that predominated in different years.


Subject(s)
Chromosome Mapping , Plant Diseases/genetics , Plant Leaves/genetics , Quantitative Trait Loci , Triticum/genetics , Triticum/microbiology , Basidiomycota , Chromosomes, Plant , Crosses, Genetic , DNA, Plant/genetics , Genes, Plant , Immunity, Innate , Phenotype , Plant Diseases/microbiology , Plant Leaves/microbiology
5.
Theor Appl Genet ; 112(3): 500-8, 2006 Feb.
Article in English | MEDLINE | ID: mdl-16331478

ABSTRACT

Resistance based on slow-rusting genes has proven to be a useful strategy to develop wheat cultivars with durable resistance to rust diseases in wheat. However this type of resistance is often difficult to incorporate into a single genetic background due to the polygenic and additive nature of the genes involved. Therefore, markers, both molecular and phenotypic, are useful tools to facilitate the use of this type of resistance in wheat breeding programs. We have used field assays to score for both leaf and yellow rust in an Avocet-YrA x Attila population that segregates for several slow-rusting leaf and yellow rust resistance genes. This population was analyzed with the AFLP technique and the slow-rusting resistance locus Lr46/Yr29 was identified. A common set of AFLP and SSR markers linked to the Lr46/Yr29 locus was identified and validated in other recombinant inbred families developed from single chromosome recombinant populations that segregated for Lr46. These populations segregated for leaf tip necrosis (LTN) in the field, a trait that had previously been associated with Lr34/Yr18. We show that LTN is also pleiotropic or closely linked to the Lr46/Yr29 locus and suggest that a new Ltn gene designation should be given to this locus, in addition to the one that already exists for Lr34/Yr18. Coincidentally, members of a small gene family encoding beta-1 proteasome subunits located on group 1L and 7S chromosomes implicated in plant defense were linked to the Lr34/Yr18 and Lr46/Yr29 loci.


Subject(s)
Basidiomycota/pathogenicity , Genes, Plant , Immunity, Innate/genetics , Plant Diseases/microbiology , Plant Leaves/microbiology , Proteasome Endopeptidase Complex/analysis , Chromosome Mapping , Chromosomes, Plant , Crosses, Genetic , DNA, Plant/isolation & purification , Expressed Sequence Tags , Genetic Markers , Microsatellite Repeats , Necrosis/pathology , Plant Diseases/genetics , Polymorphism, Single-Stranded Conformational , Proteasome Endopeptidase Complex/chemistry , Proteasome Endopeptidase Complex/genetics , Quantitative Trait Loci , Random Amplified Polymorphic DNA Technique
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