Literature DB >> 28560590

High-resolution mapping reveals linkage between genes in common bean cultivar Ouro Negro conferring resistance to the rust, anthracnose, and angular leaf spot diseases.

Giseli Valentini1, Maria Celeste Gonçalves-Vidigal1, Oscar P Hurtado-Gonzales2, Sandra Aparecida de Lima Castro1, Perry B Cregan2, Qijian Song2, Marcial A Pastor-Corrales3.   

Abstract

KEY MESSAGE: Co-segregation analysis and high-throughput genotyping using SNP, SSR, and KASP markers demonstrated genetic linkage between Ur-14 and Co-3 4 /Phg-3 loci conferring resistance to the rust, anthracnose and angular leaf spot diseases of common bean. Rust, anthracnose, and angular leaf spot are major diseases of common bean in the Americas and Africa. The cultivar Ouro Negro has the Ur-14 gene that confers broad spectrum resistance to rust and the gene cluster Co-3 4 /Phg-3 containing two tightly linked genes conferring resistance to anthracnose and angular leaf spot, respectively. We used co-segregation analysis and high-throughput genotyping of 179 F2:3 families from the Rudá (susceptible) × Ouro Negro (resistant) cross-phenotyped separately with races of the rust and anthracnose pathogens. The results confirmed that Ur-14 and Co-3 4 /Phg-3 cluster in Ouro Negro conferred resistance to rust and anthracnose, respectively, and that Ur-14 and the Co-3 4 /Phg-3 cluster were closely linked. Genotyping the F2:3 families, first with 5398 SNPs on the Illumina BeadChip BARCBEAN6K_3 and with 15 SSR, and eight KASP markers, specifically designed for the candidate region containing Ur-14 and Co-3 4 /Phg-3, permitted the creation of a high-resolution genetic linkage map which revealed that Ur-14 was positioned at 2.2 cM from Co-3 4 /Phg-3 on the short arm of chromosome Pv04 of the common bean genome. Five flanking SSR markers were tightly linked at 0.1 and 0.2 cM from Ur-14, and two flanking KASP markers were tightly linked at 0.1 and 0.3 cM from Co-3 4 /Phg-3. Many other SSR, SNP, and KASP markers were also linked to these genes. These markers will be useful for the development of common bean cultivars combining the important Ur-14 and Co-3 4 /Phg-3 genes conferring resistance to three of the most destructive diseases of common bean.

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Year:  2017        PMID: 28560590     DOI: 10.1007/s00122-017-2920-6

Source DB:  PubMed          Journal:  Theor Appl Genet        ISSN: 0040-5752            Impact factor:   5.699


  24 in total

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Authors:  Beat Keller; Chloe Manzanares; Carlos Jara; Juan David Lobaton; Bruno Studer; Bodo Raatz
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9.  Fine Mapping of Ur-3, a Historically Important Rust Resistance Locus in Common Bean.

Authors:  Oscar P Hurtado-Gonzales; Giseli Valentini; Thiago A S Gilio; Alexandre M Martins; Qijian Song; Marcial A Pastor-Corrales
Journal:  G3 (Bethesda)       Date:  2017-02-09       Impact factor: 3.154

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2.  Different loci control resistance to different isolates of the same race of Colletotrichum lindemuthianum in common bean.

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3.  Unravelling the Genetic Architecture of Rust Resistance in the Common Bean (Phaseolus vulgaris L.) by Combining QTL-Seq and GWAS Analysis.

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Journal:  Plants (Basel)       Date:  2022-03-31

4.  Integrating genetic and physical positions of the anthracnose resistance genes described in bean chromosomes Pv01 and Pv04.

Authors:  Ester Murube; Ana Campa; Juan José Ferreira
Journal:  PLoS One       Date:  2019-02-14       Impact factor: 3.240

5.  Genome-Wide Association Studies Detect Multiple QTLs for Productivity in Mesoamerican Diversity Panel of Common Bean Under Drought Stress.

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