Czech J. Genet. Plant Breed., 2015, 51(1):9-15 | DOI: 10.17221/158/2014-CJGPB

The genetic diversity of gliadins in Aegilops geniculata from AlgeriaOriginal Paper

Asma MEDOURI, Inès BELLIL, Douadi KHELIFI
Laboratoire de Génétique Biochimie et Biotechnologies Végétales, Faculté des Sciences de la Nature et de la Vie, Université Constantine 1, Constantine, Algérie

The gliadins of the wild wheat Aegilops geniculata represent a valuable gene pool in breeding for bread making quality. The genetic diversity of gliadins in A. geniculata was studied among 36 of its accessions, collected in the north of Algeria, using acid polyacrylamide-gel electrophoresis (Acid-PAGE). In total, sixty-one polymorphic bands and 35 gliadin patterns were identified. Twenty-eight different bands and 34 patterns were found in the ω-gliadin region, 13 polymorphic bands and 33 patterns for γ-gliadins, 12 bands and 34 different patterns for β-gliadins and eight bands in combination resulted in 25 different patterns in the α-gliadin zone. Thirty-five patterns were found for each of the Gli-1 (γ/ω region) and Gli-2 (α/β region) loci. The genetic diversity index (H) was higher for ω-gliadins (0.968), followed by γ- and β-gliadins (0.964 and 0.961, respectively), and the lowest value was detected in α-gliadin patterns (0.944). Cluster analysis based on Ward's method divided the analysed collection into five separated groups in which genetic diversity did not follow the geographical distribution. The polymorphism observed in the electrophoretic patterns highlights close correlations between bioclimatic features and some ω-gliadin proteins.

Keywords: Acid-PAGE; gliadin patterns; polymorphism; wild wheat

Published: March 31, 2015  Show citation

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MEDOURI A, BELLIL I, KHELIFI D. The genetic diversity of gliadins in Aegilops geniculata from Algeria. Czech J. Genet. Plant Breed. 2015;51(1):9-15. doi: 10.17221/158/2014-CJGPB.
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References

  1. Aliyeva A., Ojaghi J., Mehdiyeva S. (2012): Electrophoretic profiles of gliadin subunits to evaluate genetic diversity of Azerbaijan synthetic branched spike wheat accessions. American-Eurasian Journal of Agricultural & Environmental Sciences, 12: 1343-1349.
  2. Bandou H., Rodríguez-Quijano M., Carrillo J.M., Branlard G., Zaharieva M., Monneveux P. (2009): Morphological and genetic variation in Aegilops geniculata from Algeria. Plant Systematics and Evolution, 277: 85-97. Go to original source...
  3. Bietz J.A., Huebner F.R., Sanderson J.E., Wall J.S. (1977): Wheat gliadin homology revealed through N-terminal amino acid sequence analysis. Cereal Chemistry, 54: 1070-1083.
  4. Caballero L., Martin L.M., Alvarez J.B. (2004): Variation and genetic diversity for gliadins in Spanish spelt wheat accessions. Genetic Resource and Crop Evolution, 51: 679-686. Go to original source...
  5. Ciaffi M., Dominici L., Lafiandra D. (1997): Gliadin polymorphism in wild and cultivated einkorn in wheats. Theoretical and Applied Genetics, 94: 68-74. Go to original source... Go to PubMed...
  6. Hammer K. (1980): For the taxonomy and nomenclature of the genus Aegilops L. Feddes Repertorium, 91: 225-258. (in German) Go to original source...
  7. Harsch S., Gunther T., Kling Ch.I., Rozynek B., Hesemann C.U. (1997): Characterization of spelt (Triticum spelta L.) forms by gel electrophoretic analyses of seed storage proteins. I. The gliadins. Theoretical and Applied Genetics, 94: 52-60. Go to original source... Go to PubMed...
  8. Kasarda D.D., Autran J.C., Lew E.J.L., Nimmo C.C., Shewry PR. (1983): N-terminal amino acid sequences of ω-gliadins and ω-secalins: implications for the evolution of prolamin genes. Biochimica et Biophysica Acta, 747: 138-150. Go to original source...
  9. Khabiri T., Asghari Zakaria R., Zare N., Sofalian O. (2013): Assessing genetic diversity based on gliadin proteins in Aegilops cylindrica populations from northwest of Iran. Notulae Scientia Biologicae, 5: 109-113. Go to original source...
  10. Kozub N.A., Sozinov I.A., Sozinov A.A. (2012): Identification of alleles at the gliadin loci Gli-U1 and Gli-Mb1in Aegilops biuncialisVis. Russian Journal of Genetics, 48: 473-479. Go to original source...
  11. Medouri A., Bellil I., Khelifi D. (2014): Polymorphism at high molecular weight glutenin subunits and morphological diversity of Aegilops geniculata Roth collected in Algeria. Cereal Research Communications, doi: 10.1556/CRC.201 Go to original source...
  12. Metakovsky E.V., Branlard G. (1998): Genetic diversity of French common wheat germplasm based on gliadin alleles. Theoretical and Applied Genetics, 96: 209-218. Go to original source...
  13. Metakovsky E.V., Pogna N.E., Biancardi A.M., Redaelli R. (1994): Gliadin allele composition of common wheat cultivars grown in Italy. Journal of Genetics and Breeding, 48: 55-66.
  14. Metakovsky E.V., Gómez M., Vázquez., Carrillo J.M. (2000): High genetic diversity of Spanish common wheats as judged from gliadin alleles. Plant Breeding, 119: 37-42. Go to original source...
  15. Nei M. (1973): Analysis of gene diversity in subdivided populations. Proceedings of the National Academy of Sciences of the USA, 70: 3321-3323. Go to original source... Go to PubMed...
  16. Payne P.I. (1987): Genetics of wheat storage proteins and the effect of allelic variation on bread-making quality. Annual Review of Plant Physiology, 38: 141-153. Go to original source...
  17. Payne P.I., Jackson E.A., Holt L.M., Law C.N. (1984): Genetic linkage between endosperm storage protein genes on each of the short arms of chromosomes 1A and 1B in wheat. Theoretical and Applied Genetics, 67: 235-243. Go to original source... Go to PubMed...
  18. Ruiz M., Carrillo J.M. (1993): Linkage relationships between prolamin genes on chromosomes 1A and 1B of durum wheat. Theoretical and Applied Genetics, 87: 353-360. Go to original source... Go to PubMed...
  19. Ruiz M., Rodríguez-Quijano M., Metakovsky E.V., Vazquez J.F., Carrillo J.M. (2002): Polymorphism, variation and genetic identity of Spanish common wheat germplasm based on gliadin alleles. Field Crops Research, 79: 185-196. Go to original source...
  20. Sewa R., Jain N., Dawar V., Singh R.P., Shoran J. (2005): Analysis of Acid-PAGE gliadin pattern of Indian wheats (Triticum aestivum L.) representing different environments and periods. Crop Science, 45: 1256-1263. Go to original source...
  21. Shewry P.R., Halford N.G., Lafiandra D. (2003): 3: Genetics of wheat gluten proteins. In: Hall J.C., Dunlap J.C., Friedmann T. (eds): Advances in Genetics. San Diego, Elsevier Academic Press: 111-184. Go to original source...
  22. Singh N.K., Shepherd K.W. (1988): Linkage mapping of genes controlling endosperm storage proteins in wheat. Theoretical and Applied Genetics, 75: 628-641. Go to original source...
  23. Tanaka H., Tomita M., Tsujimoto H., Yasumuro Y. (2003): Limited but specific variations of seed storage proteins in Japanese common wheat (Triticum aestivum L.). Euphytica, 132: 167-174. Go to original source...
  24. Tatham A.S., Shewry P.R. (1995): The S-poor prolamins of wheat, barley and rye. Journal of Cereal Science, 22: 1-16. Go to original source...
  25. Woychik J.H., Boundy J.A., Dimler R.J. (1961): Starch gelelectrophoresis of wheat gluten proteins with concentrated urea. Archives of Biochemistry and Biophysics, 94: 477-482. Go to original source... Go to PubMed...
  26. Wrigley C.W., Békés F., Bushuk W. (2006): Gluten: A balance of gliadin and glutenin. In: Wrigley C.W., Békés F., Bushuk W. (eds): Gliadin and Glutenin: The Unique Balance of Wheat Quality. Saint Paul, AACC International: 3-32. Go to original source...
  27. Zaefizadeh M., Somarin S.J., Ojaghi J., Seyedi S.M., Mahmoodabad R.Z., Ochi M. (2010): Genetic diversity for gliadin patterns of durum wheat landraces in the Northwest of Iran and Azerbaijan. Pesquisa Agropecuária Brasileira, 45: 1425-1432. Go to original source...
  28. Zaharieva M., Gaulin E., Havaux M., Acevedo E., Monneveux P. (2001a): Drought and heat responses in the wild wheat relative Aegilops geniculata Roth: potential interest for wheat improvement. Crop Science, 41: 1321-1329. Go to original source...
  29. Zaharieva M., Monneveux P., Henry M., Rivoal R., Valkoun J., Nachit M.M. (2001b): Evaluation of a collection of wild wheat relative Aegilops geniculata Roth and identification of potential sources for useful traits. Euphytica, 119: 33-38. Go to original source...
  30. Zillman R.R., Bushuk W. (1979): Wheat cultivar by gliadin identification electrophoregram. II. Effects of environmental and experimental factors on the gliadin electrophoregrams. Canadian Journal of Plant Science, 59: 281-286. Go to original source...

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