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2015 | 37 | 03 |

Tytuł artykułu

Chromosome mapping of four novel mutants in bread wheat (Triticum aestivum L.)

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Induced mutants constitute an important resource for mapping and cloning of genes for specific traits. Five loci underlying four induced mutants in wheat were mapped using phenotypic data and simple sequence repeat (SSR) genotyping data collected on F2 and F3 populations. The four mutant traits included the following: (1) axillary branching, (2) early leaf senescence, (3) reduced plant height and (4) reduced number of nodes. The ‘axillary branching’ locus (Axb) was mapped near Xcfd152 at a distance of 7.5 cM on chromosome 3DS. The ‘early leaf senescence’ gene (els) was mapped on 2DL at a distance of 28.6 cM from the nearest marker Xgwm539. A wheat expressed sequence tag (EST) TaSAG1 representing a candidate for els gene for early leaf senescence was also identified. The ‘reduced plant height’ locus was mapped on chromosome 2BL close to Xwmc361, which is tightly linked with Xwmc317 associated with a ‘GA-responsive dwarfing gene’ Rht4; hence, the ‘dwarf mutant-3’ used in the present study may be a phenotypic manifestation of an another allele of the gene Rht4. The ‘reduced number of node’ mutant was mapped on two loci (rnd1 and rnd2) on chromosomes 2DS and 5AL. The marker locus Xgwm261-2D linked with rnd1 was earlier reported to be closely associated with Rht8 gene, suggesting that rnd1 may perhaps represent a mutation in Rht8 gene; the second locus rnd2 on 5AL represents a novel gene. These results may prove useful in explaining the genetics of four mutant traits and may later also facilitate cloning the genes for these traits.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

37

Numer

03

Opis fizyczny

Article: 66 [10 p.], fig.,ref.

Twórcy

autor
  • Molecular Biology Laboratory, Department of Genetics and Plant Breeding, Ch. Charan Singh University, Meerut, UP 250004, India
autor
  • Molecular Biology Laboratory, Department of Genetics and Plant Breeding, Ch. Charan Singh University, Meerut, UP 250004, India
autor
  • Semiarid Prairie Agricultural Research Centre, Agriculture and Agri-Food Canada, Swift Current, SK, Canad
autor
  • Molecular Biology Laboratory, Department of Genetics and Plant Breeding, Ch. Charan Singh University, Meerut, UP 250004, India
autor
  • Molecular Biology Laboratory, Department of Genetics and Plant Breeding, Ch. Charan Singh University, Meerut, UP 250004, India

Bibliografia

  • Agarwal P, Kumar S, Mir RR, Balyan HS, Gupta PK (2013) Some ENU induced mutations: a resource for functional genomics in bread wheat. Plant Mutat Rep 3:9–17
  • Anderson JA, Matthiesen L, Hegstad J (2004) Resistance to an imidazolinone herbicide is conferred by a gene on chromosome 6DL in the wheat line cv. 9804. Weed Sci 52:83–90
  • Ansari MJ, Kumar R, Singh K, Dhaliwal HS (2012) Characterization and molecular mapping of EMS-induced brittle culm mutants of diploid wheat (Triticum monococcum L.). Euphytica 186:165–176
  • Ansari MJ, Al-Ghamdi A, Usmani S, Kumar R, Nuru A, Singh K, Dhaliwal HS (2013a) Characterization and gene mapping of a brittle culm mutant of diploid wheat (Triticum monococcum L.) with irregular xylem vessels development. Acta Physiol Plant 35:2407–2419
  • Ansari MJ, Al-Ghamdi A, Kumar R, Usmani S, Al-attal Y, Adgaba N,Singh K, Dhaliwal HS (2013b) Characterization and gene mapping of a chlorophyll-deficient mutant clm1 of Triticum monococcum L. Biol Plant 57:442–448
  • Arite T, Iwata H, Ohshima K, Maekawa M, Nakajima M, Kojima M, Sakakibara H, Kyozuka J (2007) DWARF10, an RMS1/MAX4/ DAD1 ortholog, controls lateral bud outgrowth in rice. Plant J 51:1019–1029
  • Balyan HS, Lohia RS (1996) Pleiotropic effects of Rht dwarfing genes on grain yield and its component traits in wheat under rainfed environment. Indian J Genet 58:167–176
  • Buchanan-Wollaston V (1997) The molecular biology of leaf senescence. J Exp Bot 48:181–199
  • Chen L, Phillips AL, Condon AG, Parry MAJ, Hu Y-G (2013) Garesponsive dwarfing gene Rht12 affects the developmental andagronomic traits in common bread wheat. PLoS One 8:e62285. doi:10.1371/journal.pone.0062285
  • Dev G, Sagger S, Singh R, Sidhu BS (1980) Root distribution patterns of some wheat varieties in arid brown soil under rainfed conditions. J Nuclear Agri Biol 9:89–90
  • Distelfeld A, Avni R, Fischer AM (2014) Senescence, nutrient remobilization, and yield in wheat and barley. J Exp Bot. Doi:10.1093/jxb/ert477
  • Doust AN, Devos KM, Gadberry MD, Kellogg EA (2004) Genetic control of branching in foxtail millet. Proc Natl Acad Sci USA 101:9045–9050
  • Ellis MH, Rebetzke GJ, Azanza F, Richards RA, Spielmeyer W (2005) Molecular mapping of gibberellin-responsive dwarfing genes in bread wheat. Theor Appl Genet 111:423–430
  • Faris JD, Simons KJ, Zhang Z, Gill BS (2005) The wheat super domestication gene Q. Wheat Inf Serv 100:129–148
  • Feng GN, Zhang CQ, Tang MY, Zhang GY, Xu CW, Gu MH, Liu QQ (2013a) Genetic analysis and gene cloning of a triangular hull 1 (tri1) mutant in rice (Oryza sativa L.). Chinese Sci Bull 58:2984–2991
  • Feng GN, Zhang CQ, Zhao DS, Zhu KZ, Tu HZ, Xu CW, Liu QU (2013b) Fine mapping and cloning of leafy head mutant gene pla1-5 in rice. Rice Sci 20:329–335
  • Gale MD, Devos KM (1998) Comparative genetics in the grasses. Proc Nat Acad Sci USA 95:1971–1974
  • Gasperini G, Greenland A, Hedden P, Dreos R, Harwood V, Griffiths S (2012) Genetic and physiological analysis of Rht8 in bread wheat: an alternative source of semi-dwarfism with a reduced sensitivity to brassinosteroids. J Exp Bot 63:4419–4436
  • Gepstein S, Sabehi G, Carp MJ, Hajouj T, Nesher MFO, Yariv I, Dor C, Bassani M (2003) Large-scale identification of leaf senescence-associated genes. Plant J 36:629–642
  • Gustafsson A (1947) Mutations in agricultural plants. Hereditas 33:1–100
  • International Wheat Genome Sequencing Consortium (IWGSC) (2014) A chromosome-based draft sequence of the hexaploid bread wheat (Triticum aestivum) genome. Science 345:1251788
  • Kajimura T, Mizuno N, Takumi S (2010) Utility of leaf senescenceassociated gene homologs as developmental markers in common wheat. Plant Physiol Biochem 48:851–859
  • Korzun V, Röder M, Worland AJ, Börner A (1997) Intra chromosomal mapping of genes for dwarfing (Rht12) and vernalization response (Vrn1) in wheat by using RFLP and microsatellite markers. Plant Breed 116:227–232
  • Korzun V, Roder MS, Ganal MW, Worland AJ, Law CN (1998) Genetic analysis of the dwarfing gene Rht8 in wheat. Part I. Molecular mapping of Rht8 on the short arm of chromosome 2D of bread wheat (Triticum aestivum L.). Theor Appl Genet 96:1104–1109
  • Kumar S, Balyan HS, Gupta PK (2012) Comparative DNA sequence analysis involving wheat, brachypodium and rice genomes using mapped wheat ESTs. Triticeae Genome Genet 3:25–37
  • Kuraparthy V, Sood S, Dhaliwal HS, Chhuneja P, Gill BS (2007) Identification and mapping of a tiller inhibition gene (tin3) in wheat. Theor Appl Genet 114:285–294
  • Lander ES, Green P, Abrahamson J, Barlow A, Daly MJ, Lincoln SE, Newburg L (1987) MAPMAKER: an interactive computer package for constructing primary genetic linkage maps of experimental and natural populations. Genomics 1:174–181
  • Lee RH, Wang CH, Huang LT, Chen SC (2001) Leaf senescence in rice plants: cloning and characterization of senescence upregulated genes. J Exp Bot 52:1117–1121
  • Li N, Jia J, Xia C, Liu X, Kong X (2013) Characterization and mapping of novel chlorophyll deficient mutant genes in durum wheat. Breeding Sci 63:169–175
  • Lincoln SE, Daly MJ, Lander ES (1993) Constructing genetic linkage maps with MAPMAKER/EXP. Whitehead Institute for Biomedical Research, Cambridge
  • Maluszynski M, Szarejko I, Maluszynska J (2001) Induced mutations in wheat. In: Bonjean AP, Angus WJ (eds) The world wheat book. Lavoisier Publishing, London, pp 939–977
  • Mascher M, Jost M, Kuon J-E, Himmelbach A, Aßfalg A, Beier S, Scholz U, Graner A, Stein N (2014) Mapping-bysequencing accelerates forward genetics in barley. Genome Biol 15:R78
  • Mathews KL, Chapman SC, Trethowan R, Singh RP, Crossa J, Pfieffer W, van Ginkel M, DeLacy I (2006) Global adaptation of spring bread wheat and durum wheat lines near isogenic for major reduced height genes. Crop Sci 46:603–613
  • Murray MG, Thompson WF (1980) Rapid isolation of high molecular weight plant DNA. Nucleic Acids Res 8:4321–4325. doi:10.1093/nar/8.19.4321
  • Piao R, Jiang W, Ham TH, Choi MS, Qiao Y, Chu SH, Park JH, Woo MO, Jin Z, An G, Lee J, Koh HJ (2009) Map-based cloning of the ERECT PANICLE 3 gene in rice. Theor Appl Genet 119:1497–1506
  • Pozzi C, di Pietro D, Halas G, Roig C, Salamini F (2003) Integration of a barley (Hordeum vulgare) molecular linkage map with the position of genetic loci hosting 29 developmental mutants. Heredity 90:390–396
  • Prasad G, Tripathi DK (1985) Induced multinoded mutants in barley. Barley Genet Newsletter 15:10–12
  • Richards RA (1992) The effect of dwarfing genes in spring wheat in dry environments. 2. Growth and water use efficiency. Aus J Agr Res 43:529–539
  • Roberts MA, Reader SM, Dalgliesh C, Miller TE, Foote T, Fish LJ, Snape JW, Moore G (1999) Induction and characterization of Ph1 wheat mutants. Genetics 153:1909–1918
  • Saghai-Maroof MA, Soliman KM, Jorgensen RA, Allard RW (1984) Ribosomal DNA spacer length polymorphisms in barley: Mendelian inheritance, chromosomal location, and population dynamics. Proc Natl Acad Sci USA 81:8014–8018
  • Salse J, Piegu B, Cooke R, Delseny M (2002) Synteny between Arabidopsis thaliana and rice at the genome level: a tool to identify conservation in the ongoing rice genome sequencing project. Nucleic Acids Res 30:2316–2328
  • Sambrook J, Fritsch EF, Maniatis T (1989) Molecular cloning: A laboratory manual, 2nd edn. Cold Spring Harbor Laboratory Press, Plain view, New York
  • Scholz F, Lehmann CO (1961) Die Gaterslebener mutanten der saatgerste in beziehung zur formenmannigfaltigkeit der art Hordeum vulgare L. III. Die Kulturpflanze 9:230–272
  • Sheng L, Jin WX, Neng SG, Qing TS, Song HP (2013) Map based cloning of a ‘Zebra’ leaf mutant gene zl2 in rice. Chinese J Rice Sci 27:231–239
  • Somers DJ, Isaac P, Edwards K (2004) A high-density microsatellite consensus map for bread wheat (Triticum aestivum L.). Theor Appl Genet 109:1105–1114
  • Sorefan K, Booker J, Haurogne K, Goussot M, Bainbridge K, Foo E, Chatfield S, Ward S, Beveridge C, Rameau C, Leyser O (2003) MAX4 and RMS1 are orthologous dioxygenase-like genes that regulate shoot branching in Arabidopsis and pea. Genes Dev 17:1469–1474
  • Tegelstrom H (1992) Detection of mitochondrial DNA fragments. In: Hoelzel AR (ed) Molecular Genetic Analysis of Populations: A Practical Approach. IRL Press, Oxford, pp 89–114
  • Umehara M, Hanada A, Yoshida S, Akiyama K, Arite T, Takeda-Kamiya N, Magome H, Kamiya Y, Shirasu K, Yoneyama K, Kyozuka J, Yamaguchi S (2008) Inhibition of shoot branching by new terpenoid plant hormones. Nature 455:195–200
  • Walker GW, Dietrich J, Miller R, Kasha K (1963) Recent barley mutants and their linkages. II. Genetic data for further mutants. Can J Genet Cytol 5:200–219
  • Wu HB, Wang B, Chen Y, Liu YG, Chen L (2013) Characterization and fine mapping of the rice premature senescence mutant Ospse1. Theor Appl Genet 126:1897–1907

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Bibliografia

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