박사

에티오피아의 듀럼밀 품종의 주요 종자 단백질과 유전자의 다양성

논문상세정보
' 에티오피아의 듀럼밀 품종의 주요 종자 단백질과 유전자의 다양성' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • A-PAGE
  • Gluten
  • Gluten protein
  • Null allele
  • durumwheat
  • polymorphism
  • sds-page
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
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' 에티오피아의 듀럼밀 품종의 주요 종자 단백질과 유전자의 다양성' 의 참고문헌

  • Zilic S, Barac M, Pesic M, Dodig D, Ignjatovic-Micic D. 2011. Characterization of proteins from grain of different bread and durum wheat genotypes. Int. J. Mol. Sci. 12(9): 5878-5894
  • Yadav D and Singh NK. 2011. Wheat triticin: A potential target for nutrition quality improvement, Asian Journal of Biotechnology 3:1- 21
  • Xu LL, Li W, Wei YM, Zheng YL. 2009. Genetic diversity of HMW glutenin subunits in diploid, tetraploid, and hexaploid Triticum species. Genet. Res. Crop Evol. 56: 377-391
  • Wrigley CW, Shepherd KW. 1973. Electrofocusing of grain proteins from wheat genotypes. Ann. NY Acad. Sci. 209(1): 154-162
  • Woyema A, Bultosa G and Taa A. 2012. Effect of different nitrogen fertilizer rates on yield and yield related traits for seven Durum Wheat (Triticumturgidum L. var Durum) cultivars grown at Sinana, South Eastern Ethiopia, African Journal of Food, Agriculture, Nutrition & Development. 12: 6079-6094
  • Wieser H, Koehler P, Konitzer K. 2014. Celiac Disease and Gluten: Multidisciplinary Challenges and Opportunities. First ed. Academic Press Elsevier, London, Waltham, San Diego. 1: 53-75
  • Wang H, Wei Y, Yan Z, Zheng Y. 2007. Isolation and analysis of agliadin gene coding sequences from Tritcum durum. Agric Sci China 6(1): 25–32
  • Waines JG, Payne PI. 1987. Electrophoretic analysis of the highmolecular- weight-glutenin subunits of T. monococcum, T. urartu and the A genome of bread wheat (Triticum aestivum). Theor. Appl. Genet. 74: 71-76
  • Van de Wal Y, Kooy Y, van Veelen P, Pena S, Mearin L, Molberg O, Lundin L, Mutis T, Benckhuijsen W, Drijfhout JW, Koning F. 1998. Small intestinal T cells of celiac disease patients recognize a natural pepsin fragment of gliadin. Proc Natl Acad Sci 95:10050–10054
  • V zquez D, Berger AG, Cuniberti M, Bainotti C, Miranda MZ, Scheeren PL, Jobet C, Z iga J, Cabrera G, Verges R, Pe a RJ. 2012. Influence of cultivar and environment on quality of Latin American wheats. J. Cereal Sci. 56: 196-203
  • Utebayev M, Dashkevich S, Babkenov A, Shtefan G, Fahrudenova I, Bayahmetova S, Sharipova B, Kaskarbayev Z, Shavrukov Y. 2016. Application of gliadin polymorphism for pedigree analysis in common wheat (Triticum aestivum L.) from Northern Kazakhstan. Acta Physiol. Plant. 38 (8): 204-216
  • Tatham AS, Shewry PR. 1985. The conformation of wheat gluten proteins. The secondary structures and thermal stabilities of α-, β-, γ- and ω-gliadins. J. Cereal Sci. 3(2): 103-113
  • Tamura K, Stecher G, Peterson D, Filipski A, Kumar S (2013) MEGA6: Molecular Evolutionary Genetics Analysis Version 6.0. Mol Biol Evol 30, 2725–2729.
  • Tadesse D, Labuschagne MT. and van Deventer, C.S. 2006. Quality of Ethiopian Durum Wheat Lines in Two Diverse Environments. J Agron Crop Sci. 192: 147-150
  • Stehno Z, Konvalina P, and Dotlacil L. 2008. [Emmer wheat growing]. Praha, V RV, 22 pp. (in Czech)
  • Singh NK, Shepherd KW, Cornish GB. 1991. A simplified SDS-PAGE procedure for separating LMW subunits of glutenin. J. Cereal Sci. 14: 203-208
  • Shin O, Toshiaki K and Yoshio S. 2006. Properties of wheat albumin, Ass J Japa Soc Medic Func Foods, 6: 467-470
  • Shewry PR, Tatham AS, Forde J, Kreis M and Miflin BJ. 1986. The classification and nomenclature of wheat gluten proteins: a reassessment. J. Cereal Sci. 4: 97–106
  • Shewry PR, Halford NG, Tatham AS. 1992. High molecular weight subunits of wheat glutenin. J. Cereal Sci. 15: 105-120
  • Shewry PR, Halford NG, Lafiandra D. 2003. Genetics of wheat gluten proteins. Adv Genet. 49:111–184
  • Sapirstein HD, David O, Preston KR, Dexter JE. 2007. Durum wheat bread-making quality: effects of gluten strength, protein composition, semolina particle size and fermentation time. J. Cereal Sci. 45: 150-161
  • Redaelli R, Pogna NE, Dachkevitch T, Cacciatori P, Biancardi AM, Metakovsky EV. 1992. Inheritance studies of the lAS/1DS chromosome translocation in bread wheat variety Perzivan-1. J. Genet. Breed. 46: 253-262
  • Rashed MA, Abou-Deif MH, Sallam MAA, Rizkalla AA, Ramadan WA. 2007. Identification and prediction of the flour quality of bread wheat by gliadin electrophoresis. J. Appl. Sci. Res. 3(11): 1393- 1399
  • Pogna NE, Autran JC, Mellini F, La Fiandra D. Feillet P. 1990. Chromosome 1B-encoded gliadins and glutenin subunits in durum wheats. Genetics and relationships to gluten strength. J. Cereal Sci. 11: 15-34
  • Pielou EC. 1966. The measurement of diversity in different types of biological collections. J. Theor. Biol. 13: 131-44
  • Pe a RJ, Gonzalez-Santoyo H, Cervantes F. 2004. Relationship between Glu-D1/Glu-B3 allelic combinations and bread-making quality-related parameters commonly used in wheat breeding. In S Masci, D Lafiandra, R D'Ovidio, Eds., The Gluten Proteins. Proceedings of the 8th Gluten Workshop, 8010 September 2003, Viterbo, Italy, pp. 156-157, Royal Society of Chemistry, Cambridge, UK
  • Payne PI, Nightingale MA, Krattiger AF Holt LM. 1987. The relationship between HMW glutenin subunit composition and the bread-making quality of British-grown wheat varieties. J. Sci. Food. Agric. 40: 51 -65
  • Payne PI, Lawrence GJ. 1983. Catalogue of alleles for the complex gene loci, Glu-Al, Glu-Bl, and Glu-D1 which code for highmolecular- weight subunits of glutenin in hexaploid wheat. Cereal Res. Commun. 11: 29-35
  • Payne PI, Holt LM, Lawrence GJ, Law CN. 1982. The genetics of gliadin and glutenin, the major storage proteins of the wheat endosperm. Plant Foods Hum. Nutr. 31(3): 229-241
  • Osborne TB. 1907. The proteins of the wheat kernel. Carnegie Institution of Washington, Publication no. 84., Judd & Detweiler, INC.
  • Okita TW, Cheesbrough V, Reeves CD. 1985. Evolution and heterogeneity of the a/b-type and c-type gliadin DNA sequences. J Biol Chem 260: 8203–8213
  • Ojaghi J, Akhundova E. 2010. Genetic analysis for yield and its components in doubled haploid wheat. Afr. J. Agric. Res. 5(4): 306- 315
  • Novosel'skaia-Dragovich A, Fisenko AV, Pukhal'skiĭ VA. 2013. Genetic differentiation of common wheat cultivars using multiple alleles of gliadin-coding loci. Genetika 49(5): 569-79
  • Nieto-Taladriz MT, Ruiz M, Mart nez MC, V zquez JF, Carrillo JM. 1997. Variation and classification of B low-molecular-weight glutenin subunit alleles in durum wheat. Theor. Appl. Genet. 95: 1155-1160
  • Nei M. 1973. Analysis of gene diversity in subdivided populations. Proc. Nat. Acad. Sci. 70(12): 3321-3323
  • Nawroz Abdul-razzak Tahir. 2009. Polymorphism of Protein Fractions as Biochemical Markers for Identification of Wheat Varieties, Jordan Journal of Biological Sciences. 2 (4): 159-166
  • Morris CF. 2002. Puroindolines: the molecular genetic basis of wheat grain hardness, Plant Molecular Biology, 48: 633–647
  • Moragues M, Zarco-Hernandez J, Moralejo MA, Royo C. 2006. Genetic diversity of glutenin protein subunits composition in durum wheat landraces (Triticum turgidum ssp. turgidum convar. durum (Desf.) Mackey) from the Mediterranean basin. Genet. Resour. Crop Evol. 53: 993-1002
  • Metakovsky EV, Sozinov AA. 1987. Organization, variability and stability of the family of the gliadin-coding genes in wheat: genetic data. In R Lasztity, F Bekes, eds, Proceedings of the 3rd International Workshop on Gluten Proteins, Budapest, Hungary, May 9-12, 1987, Singapore
  • Metakovsky EV, Knežević D, Javornik B. 1991. Gliadin allele composition of Yugoslav winter wheat cultivars. Euphytica 54(3): 285-295
  • Merlino M, Leroy P, Chambon C and Branland G. 2009. Mapping and proteomic analysis of albumin and globulin proteins in wheat kernels, Theor. Appl. Genet. 18: 1321-1337
  • Melnikova NV, Kudryavtseva AV, Kudryavtsev AM. 2012. Catalogue of alleles of gliadin-coding loci in durum wheat (Triticum durum Desf.). Biochimie 94(2): 551-557
  • Melnikova NV, Kudryavtsev AM. 2009. Allelic diversity at gliadincoding gene loci in cultivars of spring durum wheat (Triticum durum Desf.) bred in Russia and former Soviet republics in the 20th century. Russ. J. Genet. 45(10): 1208-1214
  • Melnikova NV, Ganeva GD, Popova ZG, Landjeva SP, Kudryavtsev AM. 2010. Gliadins of Bulgarian durum wheat (Triticum durum Desf.) landraces: genetic diversity and geographical distribution. Genet. Resour. Crop Evol. 57(4): 587-595
  • McIntosh RA, Yamazaki Y, Dubcovsky J, Rogers WJ, Morris C, Appels R, Xia XC. 2013. Catalogue of Gene Symbols for Wheat. In: 12th International Wheat Genetics Symposium, September 8–13
  • Masci S, Rovelli L, Kasarda DD, Vensel WH, Lafiandra D. 2002. Characterisation and chromosomal localisation of C-type lowmolecular- weight glutenin subunits in the bread wheat cultivar Chinese Spring. Theor Appl Genet 104: 422–428
  • Maimon O, Rokach L. 2005. Clustering methods. In O Maimon, L Rokach, eds., Data mining and knowledge discovery handbook. Springer-Verlag New York, Inc., Secaucus, NJ, USA, pp 321-352
  • Luo C, Giffin WB, Branlard G, McNeil DL. 2001. Comparison of lowand high molecular-weight wheat glutenin allele effects on flour quality. Theor. Appl. Genet. 102: 1088- 1098
  • Liu CY, Rathjen AJ. 1994: Grain yield and quality characteristics of durum wheat. In: JG Paull, IS Dundas, KW Sheperd, GJ Hollamby, eds., Proc. 7th Australian Wheat Breeding Assembly. University of Adelaide, Adelaide, 279-282
  • Liang D, Tang JW, Pena RJ, Singh R, He XY, Shen XY, Yao DN, Xia XC, He ZH. 2010. Characterization of CIMMYT bread wheats for high- and low-molecular weight glutenin subunits and other qualityrelated genes with SDS-PAGE, RP-HPLC and molecular markers. Euphytica 172: 235-250
  • Letta T, Gezu G, Kudryavtsev A, Chiapparino E, D’Egidio MG. 2005. Genetic diversity of Ethiopian durum wheat varieties based on gliadin alleles. J. Genet. Breed. 59: 277-284
  • Laws WD, and France WG. 1948. A comparative study of some protein fractions of wheat flour, Cereal Chem. 25: 231-243
  • Lawrence GJ, Shepherd KW. 1980. Variation in glutenin protein Subunits of wheat, Aust. J. Biol. Sci. 33: 221-233
  • Lasztity, R. 1984. The chemistry of cereal proteins. 2nd ed. Taylor & Francis: Oxon, UK.
  • Laemmli, U. K. (1970). Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature, 227(5259), 680-685.
  • Kwok PY and Chen X. 2003. Detection of single nucleotide polymorphisms. Curr. Issues Mol. Biol. 5: 43–60
  • Kudryavtsev AM, Melnikova NV, Novoselskaya-Dragovich A. 2014. Proceedings of the International Symposium on Genetics and Breeding of Durum Wheat, 57- 61
  • Kudryavtsev AM, Boggini G, Benedettelli S, Illichevskii NN. 1996. Giladin polymorphism and genetic diversity of modern Italian durum wheat. J. Genet. Breed. 50: 239-248
  • Jerry H. 2001. Number Cruncher Statistical Systems (NCSS) Statistical software, Utah
  • Ikeda TM, Yanaka M, Takata K. 2014. Comparison of quality-related alleles among Australian and North American wheat classes exported to Japan. Cereal Chem. 91: 616-622
  • Herberd NP, Bartels D, Thompson RD. 1985. Analysis of the gliadin multigene loci in bread wheat using nullisomictetrasomic lines. Mol Gen Genet 198: 234–242
  • He ZH, Liu L, Xia XC, Liu JJ, Pena RJ. 2005. Composition of HMW and LMW glutenin subunits and their effects on dough properties, pan bread, and noodle quality of Chinese bread wheats. Cereal Chem. 82: 345-350
  • Hassan, HMM, Afify AS, Basyiony AE and Ahmed, GT. 2010. Nutritional and Functional Properties of Defatted Wheat Protein Isolates, Australian Journal of Basic and Applied Sciences. 4(2): 348-358
  • Harsch S, G nther T, Rozynek B, Hesemann CU, Kling CI. 1997. Characterization of spelt (Triticum spelta L.) forms by gel electrophoretic analyses of seed storage proteins. I. The gliadins. Theor. Appl. Genet. 94(1): 52-60
  • Gupta RB, Paul JG, Cornish GB, Palmer GA, Bekes F, Rathjen AJ. 1994. Allelic variation at glutenin subunit and gliadin loci, Glu-1, Glu-3 and Gli-1 of common wheats. I. Its additive and interaction effects on dough properties. J. Cereal Sci. 19: 9–17
  • Gupta RB, MacRitchie F. 1994. Allelic variation at glutenin subunit and gliadin loci, Glu-1, Glu-3 and Gli-1 of bread wheats: biochemical basis of the allelic effects on dough properties. J. Cereal Sci. 19: 19- 28
  • Gu YQ, Crossman C, Kong XY, Luo MC, You FM, ColemanDerr D, Dubcovsky J, Anderson OD. 2004. Genomic organization of the complex a-gliadin gene loci in wheat. Theor Appl Genet 109: 648– 657
  • Gianibelli MC, Larroque OR, MacRichie F, Wrigley CW. 2001. Biochemical, genetic and molecular characterization of wheat glutenin and its component subunits. Cereal Chem. 78: 635-646
  • Gafurova DA, Tursunkhodzhaev PM, Kasymova TD and Yuldashev PK. 2002. Fractional and amino-acid composition of wheat grain cultivated in Uzbekistan, Chemistry of Natural Compounds. 38: 462–465
  • FAO 2014. Analysis of price incentives for wheat in Ethiopia. Technical Notes Series, MAFAP, Rome
  • Edwards NM, Preston KR, Paulley FG, Gianibelli MC, McCaig TN, Clark JM, Ames NP, Dexter JE. 2007. Hearth bread-making quality of durum wheat varying in protein composition and physical dough properties. J. Sci. Food Agric. 87: 2000-2011
  • D’Ovidio R, Masci S. 2004. The low-molecular glutenin subunits of wheat gluten. J. Cereal Sci. 39: 321-339
  • Dupont, F.M., and Altenbach, S.B. 2003. Molecular and biochemical impacts of environmental factors on wheat grain development and protein synthesis, Journal of Cereal Science. 38: 133-146
  • Dong, K., Ge, P., Ma, C., Wang, K., Yan, X., Gao, L., Li, X., Liu, J., Ma, W., and Yan, Y. 2012. Albumin and Globulin Dynamics during Grain Development of Elite Chinese Wheat Cultivar Xiaoyan 6, J. Cereal Sci. 56: 615–622
  • Dodig, D., Zoric, M., Knezevic, D., Dimitrijevic, B.G., Surlan Momirovic, 2007. Assessing wheat performance using environmental information, Genetika. 39: 413-425
  • Dachkevitch T, Redaelli R, Biancardi AM, Metakovsky EV, Pogna NE. 1993. Genetics of gliadins coded by the group 1 chromosomes in the high-quality bread wheat cultivar Neepawa. Theor. Appl. Genet. 86 (2-3): 389-399
  • Cros DU, Wrigley CW, Hare RA. 1982. Prediction of durum-wheat quality from gliadin-protein composition. Crop Pasture Sci. 33(3): 429-442
  • Chňapek M, Tomka M, Peroutkov R, G lov Z. 2014. Polymorphism of HMW-GS in collection of wheat genotypes. Int. J. Biol. Vet. Agric. Food Eng. 8: 592-597
  • Chernakov VM, Metakovsky EV. 1994. Allelic variation at the gliadincoding loci and evaluation of genetic similarity of common wheat cultivars bred in different breeding centers. Genetika 30: 509-517
  • Branlard G, Dardevet M, Amiour N, Igrejas G. 2003. Allelic diversity of HMW and LMW glutenin subunits and omega gliadins in French bread wheat (Triticum aestivum L.). Gen. Res. Crop Evol. 50: 669- 679
  • Belderok B, Mesdag J and Donner DA. 2000. Bread-making quality of wheat: a century of breeding in Europe, Kluwer Academic Publisher, the Netherlands.
  • Ayed S, Bechrif S, Othmani A, Chamekh Z, Ben Y. 2016. Variability of HMW and LMW glutenin subunits in durum wheat (Triticum durum Desf). J. Res. Agric. Anim. Sci. 4: 10-13
  • Axford DWE, McDermott EE and Redman DG. 1979. Note on the sodium dodecyl sulphate test of breadmaking quality: Comparison with Pelshenke and Zeleny tests, Cereal Chem. 56: 582-584
  • Anderson OD, Huo N, Guo YQ. 2013. The gene space in wheat: the complete gliadin gene family from the wheat cultivar Chinese Spring. Funct. Integr Genomics 13: 261-273
  • AOAC 1995. Official Methods of Analysis. Horowitz, Washington, DC.1-7