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2010 | 51 | 4 |

Tytuł artykułu

Aegilops-rye amphiploids and substitution rye used for introgression of genetic material into rye (Secale cereale L.)

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The valuable genes of Aegilops biuncialis, Ae. ovala, Ae. kotschyi, and Ae. variabilis were transferred to rye, by crossing Aegilops-rye amphiploids with tetraploid and diploid substitution rye. The C-banded karyotype of the BC₁ and BC₂ generations of amphiploids with 4x substitution rye and BC₁ with 2x substitution rye showed great variation in chromosome number and composition. In the BC₁ generation of amphiploids with 4x and 2x substitution rye, seed set success rate and germination rate varied depending on origin. However, plant sterility in all cross combinations of amphiploids with 4x and 2x substitution rye resulted in their elimination from further experiments in the BC₃ and BC₂ generations, respectively. In backcrosses of 4x substitution rye with amphiploids Ae. variabilis x rye 4x, fertile 4x rye plants containing Aegilops chromatin were produced in the BC₂ generation.

Wydawca

-

Rocznik

Tom

51

Numer

4

Opis fizyczny

p.413-420,fig.,ref.

Twórcy

  • Institute of Plant Genetics, Polish Academy of Sciences, Strzeszynska 34, 60–479 Poznan, Poland
  • Institute of Plant Genetics, Polish Academy of Sciences, Strzeszynska 34, 60–479 Poznan, Poland
  • Institute of Plant Genetics, Polish Academy of Sciences, Strzeszynska 34, 60–479 Poznan, Poland

Bibliografia

  • Apolinarska B, 1996a. Transfer of chromosomes of the A and B genomes of wheat to tetraploid rye. J Appl Genet 37: 345-356.
  • Apolinarska B, 1996b. Additions, substitutions and translocations of wheat chromosomes in tetraploid rye. Inter. Symp. Rye Breed. Genet. 27-29 June, Stuttgart, Germany. Vort Pflanzenzüchtung 35: 304-305.
  • Apolinarska B, 2003a. Substitutions, additions and translocations of wheat chromosomes in diploid rye. Bull Plant Breed and Acclim Inst 230: 195-203.
  • Apolinarska, B. 2003b. Chromosome pairing in tetraploid rye with monosomic-substitution wheat chromosomes. J Appl Genet 44: 119-128. Apolinarska, B. 2006. Chromosome pairing in diploid substitution rye and addition rye with wheat chromosomes. Cereal Res Commun 34: 1223-1229.
  • Apolinarska B, Wojciechowska B, 2003. Production of diploid rye/wheat chromosome additions and substitutions. Cereal Res Commun 31: 73-79. Damania AB, Pecetti L, 1990. Variability in a collection of Aegilops species and evaluation for yellow rust resistance at two locations in Northern Syria. J Genet Breed 44: 97-102.
  • Dimov A, Zahariev M, Mihova S, Zakharieva M, Mikhova S, Damania AB, 1993. Rust and powdery mildew resistance in Aegilops species from Bulgaria. In: Biodiversity and wheat improvement: evaluation and utilization of biodiversity in wild relatives and primitive forms for wheat improvement. ICARDA, Aleppo, Syria: 165-169.
  • Ganeva G, Bochev B, Vaneva L, 1992. A new Triticitm aestivum L. × Aegilops ovala L. amphiploid. Cereal Res Commun 20: 183-192.
  • Gill BS, Kimber G, 1974. The Giemsa C-banded karyotype of rye. Proc Nat Acad Sci, USA 71: 1247-1249.
  • Gupta PK, Fedak G, 1986. The inheritance of genetic variation in rye (Secale cereale) affecting homoeologous chromosome pairing in hybrids with bread wheat (Triticum aestivum). Can J Genet Cytol 28: 844-851.
  • Kalinowski A, Winiarczyk K, Wojciechowska B, 2001. Pollen proteins after two-dimensional gel electrophoresis and pollen morphology of the amphiploids Aegilops kolschyi and Ae. variabilis with Secale cereale. Sex Plant Reprod 14: 15-161.
  • Kalinowski A, Wojciechowska B, 2003. Pollen and leaf proteins after 2-D electrophoresis of the Aegilops geniculata × Secale cereale hybrids, amphiploids and parental forms. Euphytica 133: 201-207.
  • Kerber ER, 1987. Resistance to leaf rust in hexaploid wheat: Lr 32, a third gene, 1987. Wild wheat: an introduction. Special report 353.College of Agriculture, University of Missouri, Columbia
  • Landjeva S, Ganeva G, 1998. Transfer Aegilops ovata chromosomes into bread wheat. Proc. 9th EWAC Conference, Viterbo, Italy, 16-19 June 1997. Newsletter: 29-33.
  • Landjeva S, Ganeva G, 1999. Identification of Aegilops ovata chromosomes added to wheat (Triticum aestivum L.) genome. Cereal Res Commun 27: 55-61.
  • Lelley T, 1976. Induction of homoeologous pairing in wheat by genes of rye suppressing chromosome 5B effect. Can J Genet Cytol 18: 458-489.
  • Lukaszewski AJ, Apolinarska B, 1981. The chromosome constitution of hexaploid winter triticale. Can J Genet Cytol 23: 281-285.
  • Lukaszewski AJ, Brzeziński W, Klockiewicz -Kamińska E, 2000. Transfer of the Glu-D1 encoding high molecular weight glutenin subunits 5+10 from breadwheat to diploid rye. Euphytica 115: 49-57.
  • Lukaszewski AJ, Gustafson PJ, 1983. Translocations and modifications of chromosome constitution of tetraploid triticale. Z Pflanzenzuecht 93: 222-236.
  • Lukaszewski AJ, Kopecky D, 2010. The Phl locus from wheat controls meiotic chromosome pairing in autotetraploid rye (Secale cereale L). 129: 117-123.
  • Maqbool A, Arain MA, Siddiqui KA, 1997. Screening of Aegilops, Triticum and Hordeum species for grain weight, protein and lysine content. Wheat Inf Serv 85: 7-13.
  • Miller T, Riley R, 1972. Meiotic chromosome pairing in wheat-rye combinations. Genet Iber 24: 241-250.
  • Molnar I, Dulai S, Molnar-Lang M, 2008. Can the drought tolerance traits of Ae. biuncialis manifest even in wheat genetic background? Acta Biologica Szegendiensis 52: 175-178.
  • Ozgen M, 1984. Morphological characters and meiotic associations in a T. aestivum Korn × Ae. biuncialis Vis. Hybrid. Wheat Inf Serv 85: 7-13.
  • Pilch J. 1981. Analysis of the rye chromosome constitution and amount of telomeric heterochromatin in widely and narrowly adapted hexaploid triticales. Theor Appl Genet 60: 145-149.
  • Pilch J. 1981b. Rye chromosome constitution and the amount of telomeric heterochromatin of the widely and adapted CIMMYT hexaploid triticales. Z Pflanzenzuchtg 87: 58-68.
  • Simonenko VK, Motsny II, Sechnyak AL, Kulbida MP, 1998. The use of wheat-alien and Aegilops-rye amphiploids for introgression of genetic material to wheat. Euphytica 100: 313-321.
  • Soler C, Garcia P, Jouve N, 1990. Meiotic expression of modified chromosome constitution and structure in × Triticosecale Wittmack. Heredity 65: 21-28.
  • Spetsov P, Iliev I, Samardjieva K, Marinolva E, 1993. Studies on wheat-Aegilops variabilis addition and substitution lines resistant to powdery mildew. Proc. 8th Int. Wheat Genet Symp: 327-332.
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  • Weimarck A. 1975. Heterochromatin polymorphism in the rye karyotype as detected by the Giemsa C-banding technique. Hereditas 79: 293-300.
  • Wojciechowska B, Pudelska H, 1999. Production, morphology and fertility of the amphiploids Aegilops variabilis × Secale cereale and Ae. kotschyi × S. cereale. Cereal Res Commun 27: 79-82.
  • Wojciechowska B, Pudelska H, 2002a. Production and morphology of the hybrids Aegilops kotschyi × Secale cereale and Ae. biimcialis × S. cereale. J Appl Genet 43: 279-285.
  • Wojciechowska B, Pudelska H, 2002b. Hybrids and amphiploids of Aegilops ovata L. with Secale cereale L.: production, morphology and fertility. J Appl Genet 43: 415-421.
  • Wojciechowska B, Pudelska H, 2005. Production and characterization of amphiploids of Aegilops kotschyi and Ae. biuncialis with Secale cereale, and of backcross hybrids of Ae. biuncialis × S. cereale amphiploids with 2x and 4x S. cereale. J Appl Genet 46: 157-161.
  • Ziauddin A, Kasha KJ, 1982. Giemsa C-band identification of rye chromosome in some advanced lines of winter triticale. Can J Genet Cytol. 24: 721-727.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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