Author:
Marone Daniela,Russo Maria A,Laidò Giovanni,De Vita Pasquale,Papa Roberto,Blanco Antonio,Gadaleta Agata,Rubiales Diego,Mastrangelo Anna M
Abstract
Abstract
Background
Powdery mildew (Blumeria graminis f. sp. tritici) is one of the most damaging diseases of wheat. The objective of this study was to identify the wheat genomic regions that are involved in the control of powdery mildew resistance through a quantitative trait loci (QTL) meta-analysis approach. This meta-analysis allows the use of collected QTL data from different published studies to obtain consensus QTL across different genetic backgrounds, thus providing a better definition of the regions responsible for the trait, and the possibility to obtain molecular markers that will be suitable for marker-assisted selection.
Results
Five QTL for resistance to powdery mildew were identified under field conditions in the durum-wheat segregating population Creso × Pedroso. An integrated map was developed for the projection of resistance genes/ alleles and the QTL from the present study and the literature, and to investigate their distribution in the wheat genome. Molecular markers that correspond to candidate genes for plant responses to pathogens were also projected onto the map, particularly considering NBS-LRR and receptor-like protein kinases. More than 80 independent QTL and 51 resistance genes from 62 different mapping populations were projected onto the consensus map using the Biomercator statistical software. Twenty-four MQTL that comprised 2–6 initial QTL that had widely varying confidence intervals were found on 15 chromosomes. The co-location of the resistance QTL and genes was investigated. Moreover, from analysis of the sequences of DArT markers, 28 DArT clones mapped on wheat chromosomes have been shown to be associated with the NBS-LRR genes and positioned in the same regions as the MQTL for powdery mildew resistance.
Conclusions
The results from the present study provide a detailed analysis of the genetic basis of resistance to powdery mildew in wheat. The study of the Creso × Pedroso durum-wheat population has revealed some QTL that had not been previously identified. Furthermore, the analysis of the co-localization of resistance loci and functional markers provides a large list of candidate genes and opens up a new perspective for the fine mapping and isolation of resistance genes, and for the marker-assisted improvement of resistance in wheat.
Publisher
Springer Science and Business Media LLC
Reference75 articles.
1. Hsam SLK, Zeller FJ: Breeding for powdery mildew resistance in common wheat Triticum aestivum L.). The powdery mildews: A comprehensive treatise, Am. Phytopath. Soc. Edited by: Berlanger RR, Bushnell WR, Dik AJ, Carver DL. 2002, MN USA: St. Paul, 219-238.
2. Alam A, Xue F, Wang C, Ji C: Powdery mildew resistance genes in wheat: identification and genetic analysis. J Mol Biol Res. 2011, 1: 20-39.
3. Zhang H, Guan H, Li J, Zhu J, Xie C, Zhou Y, Duan X, Yang T, Sun Q, Liu Z: Genetic and comparative genomics mapping reveals that a powdery mildew resistance gene Ml3D232 originating from wild emmer co-segregates with an NBS-LRR analog in common wheat (Triticum aestivum L.). Theor Appl Genet. 2010, 121: 1613-1621. 10.1007/s00122-010-1414-6.
4. Yahiaoui N, Srichumpa P, Dudler R, Keller B: Genome analysis at different ploidy levels allows cloning of the powdery mildew resistance gene Pm3b from hexaploid wheat. Plant J. 2004, 37: 528-538. 10.1046/j.1365-313X.2003.01977.x.
5. Elliott C, Zhou F, Spielmeyer W, Panstruga R, Schulze-Lefert P: Functional conservation of wheat and rice mlo orthologs in defense modulation to the powdery mildew fungus. Mol Plant-Microbe Interac. 2002, 15: 1069-1077. 10.1094/MPMI.2002.15.10.1069.
Cited by
85 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献