Literature DB >> 15490099

Molecular mapping of Stb1, a potentially durable gene for resistance to septoria tritici blotch in wheat.

T B Adhikari1, X Yang, J R Cavaletto, X Hu, G Buechley, H W Ohm, G Shaner, S B Goodwin.   

Abstract

Septoria tritici blotch (STB), caused by the ascomycete Mycosphaerella graminicola (anamorph Septoria tritici), was the most destructive disease of wheat in Indiana and adjacent states before deployment of the resistance gene Stb1 during the early 1970s. Since then, Stb1 has provided durable protection against STB in widely grown wheat cultivars. However, its chromosomal location and allelic relationships to most other STB genes are not known, so the molecular mapping of Stb1 is of great interest. Genetic analyses and molecular mapping were performed for two mapping populations. A total of 148 F1 plants (mapping population I) were derived from a three-way cross between the resistant line P881072-75-1 and the susceptible lines P881072-75-2 and Monon, and 106 F6 recombinant-inbred lines (mapping population II) were developed from a cross between the resistant line 72626E2-12-9-1 and the susceptible cultivar Arthur. Bulked-segregant analysis with random amplified polymorphic DNA (RAPD), amplified fragment length polymorphism (AFLP), and microsatellite or simple-sequence repeat (SSR) markers was conducted to identify those that were putatively linked to the Stb1 gene. Segregation analyses confirmed that a single dominant gene controls the resistance to M. graminicola in each mapping population. Two RAPD markers, G7(1200) and H19(520), were tightly linked to Stb1 in wheat line P881072-75-1 at distances of less than 0.68 cM and 1.4 cM, respectively. In mapping population II, the most closely linked marker was SSR Xbarc74, which was 2.8 cM proximal to Stb1 on chromosome 5BL. Microsatellite loci Xgwm335 and Xgwm213 also were proximal to Stb1 at distances of 7.4 cM and 8.3 cM, respectively. The flanking AFLP marker, EcoRI-AGC/ MseI-CTA-1, was 8.4 cM distal to Stb1. The two RAPD markers, G7(1200) and H19(520), and AFLP EcoRI-AGC/ MseI-CTA-1, were cloned and sequenced for conversion into sequence-characterized amplified region (SCAR) markers. Only RAPD allele H19(520) could be converted successfully, and none of the SCAR markers was diagnostic for the Stb1 locus. Analysis of SSR and the original RAPD primers on several 5BL deletion stocks positioned the Stb1 locus in the region delineated by chromosome breakpoints at fraction lengths 0.59 and 0.75. The molecular markers tightly linked to Stb1 could be useful for marker-assisted selection and for pyramiding of Stb1 with other genes for resistance to M. graminicola in wheat.

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Year:  2004        PMID: 15490099     DOI: 10.1007/s00122-004-1709-6

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


  19 in total

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Authors:  R W Michelmore; I Paran; R V Kesseli
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2.  DNA polymorphisms amplified by arbitrary primers are useful as genetic markers.

Authors:  J G Williams; A R Kubelik; K J Livak; J A Rafalski; S V Tingey
Journal:  Nucleic Acids Res       Date:  1990-11-25       Impact factor: 16.971

3.  AFLP: a new technique for DNA fingerprinting.

Authors:  P Vos; R Hogers; M Bleeker; M Reijans; T van de Lee; M Hornes; A Frijters; J Pot; J Peleman; M Kuiper
Journal:  Nucleic Acids Res       Date:  1995-11-11       Impact factor: 16.971

4.  Fine physical mapping of Ph1, a chromosome pairing regulator gene in polyploid wheat.

Authors:  K S Gill; B S Gill; T R Endo; Y Mukai
Journal:  Genetics       Date:  1993-08       Impact factor: 4.562

5.  Rapid isolation of high molecular weight plant DNA.

Authors:  M G Murray; W F Thompson
Journal:  Nucleic Acids Res       Date:  1980-10-10       Impact factor: 16.971

6.  Molecular mapping of wheat. Homoeologous group 2.

Authors:  J C Nelson; A E Deynze; M E Sorrells; E Autrique; Y H Lu; M Merlino; M Atkinson; P Leroy
Journal:  Genome       Date:  1995-06       Impact factor: 2.166

7.  Identification and Molecular Mapping of a Gene in Wheat Conferring Resistance to Mycosphaerella graminicola.

Authors:  Tika B Adhikari; Joseph M Anderson; Stephen B Goodwin
Journal:  Phytopathology       Date:  2003-09       Impact factor: 4.025

8.  Structural organization of an alien Thinopyrum intermedium group 7 chromosome in U.S. soft red winter wheat (Triticum aestivum L.).

Authors:  M G Francki; O R Crasta; H C Sharma; H W Ohm; J M Anderson
Journal:  Genome       Date:  1997-10       Impact factor: 2.166

9.  A gene for resistance to a necrosis-inducing isolate of Pyrenophora tritici-repentis located on 5BL of Triticum aestivum cv. Chinese Spring.

Authors:  W S Stock; A L Brûlé-Babel; G A Penner
Journal:  Genome       Date:  1996-06       Impact factor: 2.166

10.  Association between dwarfing genes 'Rht1' and 'Rht 2' and resistance toSeptoria tritici Blotch in winter wheat (Triticum aestivum L. em Thell).

Authors:  B M Baltazar; A L Scharen; W E Kronstad
Journal:  Theor Appl Genet       Date:  1990-05       Impact factor: 5.699

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  13 in total

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Journal:  Theor Appl Genet       Date:  2006-08-01       Impact factor: 5.699

2.  Adult-plant resistance to Septoria tritici blotch in hexaploid spring wheat.

Authors:  Susanne Dreisigacker; Xiang Wang; Benjamin A Martinez Cisneros; Ruilian Jing; Pawan K Singh
Journal:  Theor Appl Genet       Date:  2015-08-23       Impact factor: 5.699

3.  Genetics of resistance to septoria tritici blotch in the Portuguese wheat breeding line TE 9111.

Authors:  L Chartrain; P Joaquim; S T Berry; L S Arraiano; F Azanza; J K M Brown
Journal:  Theor Appl Genet       Date:  2005-03-10       Impact factor: 5.699

4.  Fine genetic mapping of spot blotch resistance gene Sb3 in wheat (Triticum aestivum).

Authors:  Ping Lu; Yong Liang; Delin Li; Zhengzhong Wang; Wenbin Li; Guoxin Wang; Yong Wang; Shenghui Zhou; Qiuhong Wu; Jingzhong Xie; Deyun Zhang; Yongxing Chen; Miaomiao Li; Yan Zhang; Qixin Sun; Chenggui Han; Zhiyong Liu
Journal:  Theor Appl Genet       Date:  2016-01-08       Impact factor: 5.699

5.  Cytogenetic analysis of the susceptibility of the wheat line Hobbit sib (Dwarf A) to Septoria tritici blotch.

Authors:  L S Arraiano; J Kirby; J K M Brown
Journal:  Theor Appl Genet       Date:  2007-10-09       Impact factor: 5.699

6.  Chromosomal location of genomic SSR markers associated with yellow rust resistance in Turkish bread wheat (Triticum aestivum L.).

Authors:  F Senturk Akfirat; F Ertugrul; S Hasancebi; Y Aydin; K Akan; Z Mert; M Cakir; A Altinkut Uncuoglu
Journal:  J Genet       Date:  2013       Impact factor: 1.166

7.  Breeding for dual-purpose wheat varieties using marker-trait associations for biomass yield and quality traits.

Authors:  Pernille L Malik; Luc Janss; Linda K Nielsen; Finn Borum; Henning Jørgensen; Birger Eriksen; Jan K Schjoerring; Søren K Rasmussen
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8.  Analysis of the genetic architecture of maize ear and grain morphological traits by combined linkage and association mapping.

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Journal:  Theor Appl Genet       Date:  2017-02-18       Impact factor: 5.699

9.  New broad-spectrum resistance to septoria tritici blotch derived from synthetic hexaploid wheat.

Authors:  S Mahmod Tabib Ghaffary; Justin D Faris; Timothy L Friesen; Richard G F Visser; Theo A J van der Lee; Olivier Robert; Gert H J Kema
Journal:  Theor Appl Genet       Date:  2011-09-13       Impact factor: 5.699

Review 10.  Genetics of resistance to Zymoseptoria tritici and applications to wheat breeding.

Authors:  James K M Brown; Laëtitia Chartrain; Pauline Lasserre-Zuber; Cyrille Saintenac
Journal:  Fungal Genet Biol       Date:  2015-06       Impact factor: 3.495

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