Literature DB >> 21959905

Mapping and validation of quantitative trait loci associated with wheat yellow mosaic bymovirus resistance in bread wheat.

Xiaobiao Zhu1, Haiyan Wang, Jiao Guo, Zhenzhen Wu, Aizhong Cao, Tongde Bie, Mingjuan Nie, Frank M You, Zhaobang Cheng, Jin Xiao, Yangyang Liu, Shunhe Cheng, Peidu Chen, Xiue Wang.   

Abstract

Wheat yellow mosaic (WYM) caused by wheat yellow mosaic bymovirus (WYMV) has been growing as one of the most serious diseases affecting wheat production in China. In this study, the association of quantitative trait loci (QTLs) governing WYMV resistance with molecular markers was established using 164 recombinant inbred lines (RILs) derived from 'Xifeng Wheat' (highly resistant) × 'Zhen 9523' (highly susceptible). Phenotypic data of WYMV resistance of the RILs were collected from 4-year, two-location replicated field trials. A molecular marker-based linkage map, which was comprised of 273 non-redundant loci and represented all the 21 wheat chromosomes, was constructed with the JoinMap 4.0 software. Using the Windows QTL Cartographer V2.5 software, three QTLs associated with WYMV resistance, QYm.njau-3B.1, QYm.njau-5A.1 and QYm.njau-7B.1, were detected on chromosomes 3BS, 5AL, and 7BS, respectively. The favorable allele effects were all contributed by 'Xifeng Wheat'. Among the three QTLs, QYm.njau-3B.1 and QYm.njau-5A.1 were detected in all the four trials and the overall mean, and could explain 3.3-10.2% and 25.9-53.7% of the phenotypic variation, respectively, while QYm.njau-7B.1 was detected in one trial and the overall mean and explained 4.9 and 3.3% of the phenotypic variation, respectively. A large portion of the variability for WYMV response was explained by a major QTL, QYm.njau-5A.1. The relationship of the molecular markers linked with QYm.njau-5A.1 and the WYMV resistance was further validated using a secondary F(2) population. The results showed that three markers, i.e., Xwmc415.1, CINAU152, and CINAU153, were closely linked to QYm.njau-5A.1 with the genetic distances of 0.0, 0.0, and 0.1 cM, respectively, indicating they should be useful in marker-assisted selection (MAS) wheat breeding for WYMV resistance. A panel of germplasm collection consisting of 46 wheat varieties with known WYMV response phenotypes was further used to validate the presence and effects of QYm.njau-5A.1 and the above three markers. It was found that QYm.njau-5A.1 was present in 12 of the 34 WYMV-resistant varieties.

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Year:  2011        PMID: 21959905     DOI: 10.1007/s00122-011-1696-3

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


  22 in total

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2.  Development and mapping of microsatellite (SSR) markers in wheat.

Authors:  Q J Song; J R Shi; S Singh; E W Fickus; J M Costa; J Lewis; B S Gill; R Ward; P B Cregan
Journal:  Theor Appl Genet       Date:  2005-01-18       Impact factor: 5.699

3.  Mapping the genetic architecture of complex traits in experimental populations.

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Journal:  Bioinformatics       Date:  2007-04-25       Impact factor: 6.937

4.  QTLNetwork: mapping and visualizing genetic architecture of complex traits in experimental populations.

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Journal:  Bioinformatics       Date:  2008-01-17       Impact factor: 6.937

5.  A putative ABC transporter confers durable resistance to multiple fungal pathogens in wheat.

Authors:  Simon G Krattinger; Evans S Lagudah; Wolfgang Spielmeyer; Ravi P Singh; Julio Huerta-Espino; Helen McFadden; Eligio Bossolini; Liselotte L Selter; Beat Keller
Journal:  Science       Date:  2009-02-19       Impact factor: 47.728

6.  Permutation tests for multiple loci affecting a quantitative character.

Authors:  R W Doerge; G A Churchill
Journal:  Genetics       Date:  1996-01       Impact factor: 4.562

7.  Megabase level sequencing reveals contrasted organization and evolution patterns of the wheat gene and transposable element spaces.

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Journal:  Plant Cell       Date:  2010-06-25       Impact factor: 11.277

8.  A chromosome bin map of 16,000 expressed sequence tag loci and distribution of genes among the three genomes of polyploid wheat.

Authors:  L L Qi; B Echalier; S Chao; G R Lazo; G E Butler; O D Anderson; E D Akhunov; J Dvorák; A M Linkiewicz; A Ratnasiri; J Dubcovsky; C E Bermudez-Kandianis; R A Greene; R Kantety; C M La Rota; J D Munkvold; S F Sorrells; M E Sorrells; M Dilbirligi; D Sidhu; M Erayman; H S Randhawa; D Sandhu; S N Bondareva; K S Gill; A A Mahmoud; X-F Ma; J P Gustafson; E J Conley; V Nduati; J L Gonzalez-Hernandez; J A Anderson; J H Peng; N L V Lapitan; K G Hossain; V Kalavacharla; S F Kianian; M S Pathan; D S Zhang; H T Nguyen; D-W Choi; R D Fenton; T J Close; P E McGuire; C O Qualset; B S Gill
Journal:  Genetics       Date:  2004-10       Impact factor: 4.562

9.  A physical map of the 1-gigabase bread wheat chromosome 3B.

Authors:  Etienne Paux; Pierre Sourdille; Jérôme Salse; Cyrille Saintenac; Frédéric Choulet; Philippe Leroy; Abraham Korol; Monika Michalak; Shahryar Kianian; Wolfgang Spielmeyer; Evans Lagudah; Daryl Somers; Andrzej Kilian; Michael Alaux; Sonia Vautrin; Hélène Bergès; Kellye Eversole; Rudi Appels; Jan Safar; Hana Simkova; Jaroslav Dolezel; Michel Bernard; Catherine Feuillet
Journal:  Science       Date:  2008-10-03       Impact factor: 47.728

10.  Analysis of nucleotide sequence of wheat yellow mosaic virus genomic RNAs.

Authors:  J Yu; L Yan; N Su; Z Hou; D Li; C Han; L Yang; Z Cai; Y Liu
Journal:  Sci China C Life Sci       Date:  1999-10
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  8 in total

1.  Induction of 4VS chromosome recombinants using the CS ph1b mutant and mapping of the wheat yellow mosaic virus resistance gene from Haynaldia villosa.

Authors:  Renhui Zhao; Haiyan Wang; Jin Xiao; Tongde Bie; Shunhe Cheng; Qi Jia; Chunxia Yuan; Ruiqi Zhang; Aizhong Cao; Peidu Chen; Xiue Wang
Journal:  Theor Appl Genet       Date:  2013-08-29       Impact factor: 5.699

2.  Resistance to wheat yellow mosaic virus in Madsen wheat is controlled by two major complementary QTLs.

Authors:  Takako Suzuki; Miyuki-Nitta Murai; Takeshi Hayashi; Shuhei Nasuda; Yasuhiro Yoshimura; Takao Komatsuda
Journal:  Theor Appl Genet       Date:  2015-05-10       Impact factor: 5.699

3.  Barley Yellow Mosaic Virus VPg Is the Determinant Protein for Breaking eIF4E-Mediated Recessive Resistance in Barley Plants.

Authors:  Huangai Li; Hideki Kondo; Thomas Kühne; Yukio Shirako
Journal:  Front Plant Sci       Date:  2016-09-30       Impact factor: 5.753

4.  Epistatic determinism of durum wheat resistance to the wheat spindle streak mosaic virus.

Authors:  Yan Holtz; Michel Bonnefoy; Véronique Viader; Morgane Ardisson; Nicolas O Rode; Gérard Poux; Pierre Roumet; Véronique Marie-Jeanne; Vincent Ranwez; Sylvain Santoni; David Gouache; Jacques L David
Journal:  Theor Appl Genet       Date:  2017-04-27       Impact factor: 5.699

5.  A single QTL on chromosome 6DS derived from a winter wheat cultivar 'OW104' confers resistance to Wheat yellow mosaic virus.

Authors:  Yoko Yamashita; Chihiro Souma; Reina Ogura; Takako Suzuki
Journal:  Breed Sci       Date:  2020-05-20       Impact factor: 2.086

6.  A genetic analysis of the resistance in barley to Soil-borne wheat mosaic virus.

Authors:  Kaori Okada; Tsuneo Kato; Tetsuo Oikawa; Takao Komatsuda; Kiyoshi Namai
Journal:  Breed Sci       Date:  2020-11-28       Impact factor: 2.086

7.  Dissection and cytological mapping of chromosome arm 4VS by the development of wheat-Haynaldia villosa structural aberration library.

Authors:  Keli Dai; Renhui Zhao; Miaomiao Shi; Jin Xiao; Zhongyu Yu; Qi Jia; Zongkuan Wang; Chunxia Yuan; Haojie Sun; Aizhong Cao; Ruiqi Zhang; Peidu Chen; Yingbo Li; Haiyan Wang; Xiue Wang
Journal:  Theor Appl Genet       Date:  2019-10-05       Impact factor: 5.699

Review 8.  Role of the Genetic Background in Resistance to Plant Viruses.

Authors:  Jean-Luc Gallois; Benoît Moury; Sylvie German-Retana
Journal:  Int J Mol Sci       Date:  2018-09-20       Impact factor: 5.923

  8 in total

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