References
- AL-ahmar, E., Haider, N., Azzam. H. 2010. Genetic Relationships among Aegilops L. Species Using DNA Molecular Markers. General Commission for Scientific Agricultural Research, Gene Bank Division,
Faculty of Agriculture, Damascus University. Syria.
- Alnaddaf, L.M., M.Y. Moualla and N. Haider, (2012). Resolving Genetic Relationships among Aegilops L. and Triticum L. species using analysis of Chloroplast DNA by Cleaved Amplified Polymorphic Sequence (CAPS). Maxwell Scientific Organization, In Press.
- Alnaddaf L. M., M.Y. Moualla and N. Haider, (2013)a. Phylogenetic relationships among Triticum L.
and Aegilops L. species based on the internal transcribed spacer sequences of nrDNA (ITS). Tishreen University Journal for Research and Scientific Studies - Biological Sciences Series Vol. (35) No. (5)
- Alnaddaf, L.M. (2013)b. Resolving Genetic Relationships among Aegilops L. and Triticum L. species using molecular markers. Tishreen University.
- Badaeva, E.D., Amosova A.V., Samatadze T.E., Zoshchuk, S.A., Chikida, N., Zelenin, A.V., Raupp, W.J.,
Friebe, B., Gill, B.S. (2004). Genome differentiation in Aegilops. 4. Evolution of U-genome cluster. Plant Systematics and Evolution. 246:45-76
- Bandou, H., Rodriguez-Quijano, M., Carrillo, J.M., Branlard, G., Zaharieva, M., Monneveux, P. (2009).
Morphological and genetic variation in Aegilops geniculata from Algeria. Plant Systematic and Evolution. 277:85-97.
- Bietz, J.A. And Wall J.S. (1972). Wheat Gluten Subunits: Molecular Weights Determined By Sodium Sulfate-Polyacrylamide Gel Electrophoresis. Cereal Chem. 49: 416-430.
- Carrillo JM, Rousset M, Qualset CO, Kasarda DD (1990). Use of recombinant inbred lines of wheat for study of associations of high molecular weight glutenin subunits alleles to quantitative triats. Theor Appl Genet 79:321-330.
- Colmer, T. D., Flowers, T. J., & Munns, R. (2006). Use of wild relatives to improve salt tolerance in
wheat. Journal of Experimental Botany, 57(5), 1059-1078.
- Dvorak, J., Zhang, H. B. (1992). Application of molecular tools for study of the phylogeny of diploid and polyploid taxa in Triticeae. Hereditas 116(1–2):37-42.
- Ghasemzade, R., Behamta, M. R., Aghaii, M. J., Omidi, M., Mohammadi, V., & Hasani, M. I. (2008). Intraand inter-population diversity of Iranian Aegilops tauschii based on seed storage protein electrophoresis.
Int. J. Agric. Biol, 10, 463-465.
- Goesaert, H., Brijs, K., Veraverbeke, W. S., Courtin, C. M., Gebruers, K., & Delcour, J. A. (2005). Wheat flour constituents: how they impact bread quality, and how to impact their functionality. Trends in food
science & technology, 16(1-3), 12-30.
- Haider ,N., Nabulsi, I., MirAli. N. (2010).Comparison of the efficiency of A-PAGE and SDS-PAGE, ISSRs and RAPDs in resolving genetic relationships among Triticum and Aegilops species. Genet Resour Crop Evol 57:1023-1039.
- Hegde, S. G., Valkoun, J., & Waines, J. G. (2002). Genetic diversity in wild and weedy Aegilops,
Amblyopyrum, and Secale species—a preliminary survey. Crop Science, 42(2), 608-614.
- Jaaska, V. (1981). Aspartate aminotransferase and alcohol dehydrogenase isoenzymes: Intraspecific
differentiation in Aegilops tauschii and the origin of the D genome polyploids in the wheat group. Plant Systematics and Evolution, 137(4), 259-273.
- Jaaska, V. (1993). Isoenzymes in the evaluation of germplasm diversity in wild diploid relatives of cultivated wheat. In: Biodiversity and Wheat Improvement, Damania, A.B. (John Wiley and Sons, New
York, pp: 247-257.
- Kilian, B., Mammen, K., Millet, E., Sharma, R., Graner, A., Salamini, F., Hammer, K., Özkan, H. (2011).Aegilops. In: Kole, C. (ed.), Wild Crop Relatives: Genomic and Breeding Resources Cereals. Springer, Heidelberg. Dordrecht, London, New York, pp. 1-76.
- Konstantinos, G.T. and P.J. Bebeli, (2010). Genetic diversity of Greek Aegilops species using different types of nuclear genome markers. Molecul. Phylog. Evol., 56: 951-961. - Kumar, A., Kapoor, P., Chunduri, V., Sharma, S., & Garg, M. (2019). Potential of Aegilops sp. For
improvement of grain processing and nutritional quality in wheat (Triticum aestivum). Frontiers in plant science, 10, 308, 1-19.
- Laemmli, U. K. (1970). Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature, 227(5259), 680-685.
- MacRitchie, F. (1992). Physicochemical properties of wheat proteins in relation to functionality. In Advances in food and nutrition research (Vol. 36, pp. 1-87). Academic Press.
- Malik, A. H. (2009). Nutrient uptake, transport and translocation in cereals: influences of environmental and farming conditions. Introductory Paper at the Faculty of Landscape Planning, Horticulture and Agricultural Science. Swedish University of Agricultural Sciences (No. 2009: 1).
- McFadden, E. S., & Sears, E. R. (1946). The origin of Triticum spelta and its free-threshing hexaploid relatives. Journal of Heredity, 37(3), 81-89.
- Mir Ali, N., 2000. Heterogenity Within Old And Modern Durum And Bread Wheat Grown In Syria Using The A-PAGE And SDS-PAGE Electrophoresis Techniques. Plant Varieties & Seeds. 13: 149-157.
- Molnár, I., Gáspár, L., Sárvári, É., Dulai, S., Hoffmann, B., Molnár-Láng, M., et al. (2004). Physiological
and morphological responses to water stress in Aegilops biuncialis and Triticum aestivum genotypes with differing tolerance to drought. Funct. Plant Biol. 31, 1149-1159.
- Monneveux, P., Zaharieva, M., Rekika, D., Royo, C., Nachit, M.M., Fonzo, N.D., Araus, J.L. (2000). The
utilization of Triticum and Aegilops species for the improvement of durum wheat. Options Méditerranéennes. Série A, Séminaires Méditerranéens 40:71-81.
- Nevo E (1998). Genetic diversity in in wild cereals: regional and local studies and their bearing on
conservation ex sito and in situ. Genetic Resourses and Crop Evolution. 45: 355-370.
- Payne, P.I., Corfield K.G., Holt L.M. and Blackman J.A. (1981). Correlations Between The Inheritance
Of Certain High Molecular Weight Subunits Of Glutenin And Bread Making Quality In Progenies Of Six Crosses Of Bread Wheat. Journal Of Science Of Food And Agriculture. 32:51-60.
- Payne P. I., Lawrence G.J. (1983). Catalogue of alleles for the complex loci, Glu-A1, Glu-B1 and Glu-D1 which code for high molecular weight subunits of glutenin in hexaploid wheat. Cereal Research
Communication 11, pp: 29-35.
- Payne, P. I., Holt, L. M., Jackson, E. A., & Law, C. N. (1984). Wheat storage proteins: their genetics and
their potential for manipulation by plant breeding. Philosophical Transactions of the Royal Society of London. B, Biological Sciences, 304(1120), 359-371.
- Payne, P. I., Holt, L. M., Krattiger, A. F., and Carrillo, J. M. (1987). Relationships between seed quality characteristics and HMW glutenin subunit composition determined using wheats grown in Spain. J. Cereal
Sci. 7, 229-235.
- Przewieslik-Allen, A. M., Burridge, A. J., WILKINSON, P. A., Winfield, M. O., Shaw, D. S., McAusland, L.,. .. & Barker, G. L. (2018). Developing a high-throughput SNP-based marker system to facilitate the
introgression of traits from Aegilops species into bread wheat (Triticum aestivum). Frontiers in plant science, 9, 1993.
- Resta, P., Zhang, H.B., Dubcovsky, J., Dvorak, J. 1996. The origin of the genomes of Triticum biunciale, T. ovatum T. neglectum, T. columnare and T. rectum based on variation in repeated nucleotide sequences. Am. J. Bot. 83:1556-1565.
- Sasanuma, T., Chabane, K., Endo, T. R., & Valkoun, J. (2004). Characterization of genetic variation in
and phylogenetic relationships among diploid Aegilops species by AFLP: incongruity of chloroplast and
nuclear data. Theoretical and Applied Genetics, 108(4), 612-618.
- Statsoft, Inc. 2003. STATISTICA (data analysis software system), version 6. www.statsoft.com
- Shewry, P. R., Halford, N. G. and Tatham, A. S. (1992). High molecular weight subunits of wheat glutenin.
Journal of Cereal Science 15, 105-120.
- Shewry, P. R. and Halford, N. G. (2002). Cereal seed storage proteins: Structures, properties and role in
grain utilization. Journal of Experimental Botany 53, 947-958.
- Singh, N. K., and Shepherd, K. W. (1988). Linkage mapping of the genes controlling endosperm proteins
in wheat. 1. Genes on the short arms of group1 chromosomes. Theor. Appl. Genet. 66, 628–641.
- Sofalian, O., & Valizadeh, M. (2009). Investigation of seed storage proteins in some wild wheat progenitors
using SDS-PAGE and Acid-PAGE. Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 37(1), 179-182.
- Sreeramulu, G., and Singh, N. K. (1997). Genetic and biochemical characterization of novel low molecular
weight glutenin subunits in wheat (Triticum aestivum L.). Genome 40, 41-48.
- Terachi, T., Y. Ogihara and K. Tsunewaki, )1984( . The molecular basis of genetic diversity among
cytoplasms of Triticum and Aegilops. III. Chloroplast genomes of the M and modified M genome-carrying
species.Genetics, 108: 681-695.
- Van Slageren, M. W. (1994). Wild Wheats: A Monograph of Aegilops L. and Amblypyrum (Jaub. &
Spach) Eig (Poaceae). Wageningen, the Netherlands: Agricultural University & International Center for
Agricultural International Center for Agricultural Research in the Dry Areas, Aleppo, Syria.
- Wan, Y., Wang, D., Shewry, P., & Halford, N. (2002). Isolation and characterization of five novel high
molecular weight subunit of glutenin genes from Triticum timopheevi and Aegilops cylindrica. Theoretical and Applied Genetics, 104(5), 828-839.
- Wang, G. Z., Miyashita, N. T., & Tsunewaki, K. (1997). Plasmon analyses of Triticum (wheat) and Aegilops: PCR–single-strand conformational polymorphism (PCR-SSCP) analyses of organellar DNAs.
Proceedings of the National Academy of Sciences, 94(26), 14570-14577.
- Yamane, K., Kawahara, T. (2005). Intra- and interspecific phylogenetic relationships among diploid Triticum- Aegilops species (Poaceae) based on base-pair substituation, indels, and microsatellites in
chloroplast noncoding sequences. Am. J. Bot. 92:1887–1898.
- Yan, Y., Hsam, S. L. K., Yu, J., Jiang, Y., & Zeller, F. J. (2003). Allelic variation of the HMW glutenin subunits in Aegilops tauschii accessions detected by sodium dodecyl sulphate (SDS-PAGE), acid polyacrylamide gel (A-PAGE) and capillary electrophoresis. Euphytica, 130(3), 377-385.
- Zaharieva, M., Monneveux, P., Henry, M., Rivoal, R., Valkoun, J., & Nachit, M. M. (2001). Evaluation
of a collection of wild wheat relative Aegilops geniculata Roth and identification of potential sources for useful traits. In Wheat in a Global Environment ( pp. 739-746). Springer, Dordrecht