Acta Agron Sin ›› 2017, Vol. 43 ›› Issue (07): 967-973.doi: 10.3724/SP.J.1006.2017.00967
• CROP GENETICS & BREEDING·GERMPLASM RESOURCES·MOLECULAR GENETICS • Previous Articles Next Articles
QI Xiao-Lei1,2,** ,BAO Yin-Guang1,**,LI Xing-Feng1,QIAN Zhao-Guo2,WANG Rui-Xia2,WU Ke2,WANG Hong-Gang1,*
[1]王洪刚, 刘树兵, 亓增军, 孔凡晶, 高居荣. 中间偃麦草在小麦遗传改良中的应用研究. 山东农业科学, 2000, 31: 333–336 Wang H G, Liu S B, Qi Z Y, Kong F J, Gao J R. Application studies of Elytrigia intermedium in hereditary of wheat. Shandong Agric Sci, 2000, 31: 333–336 (in Chinese with English abstract) [2]孙善澄. 小偃麦类型与物种形成的探讨. 作物学报, 1980, 6: 1–10 Sun S C. Research on Triticum agropyron form and species formation. Acta Agron Sin, 1980, 6: 1–10 (in Chinese with English abstract) [3]Cauderon Y. étude cytogénétique del’évolution du matériel issu decroisement entre Triticum aestivum et Agropyron intermedium. Ann de l’Amél Plantes, 1966, 16: 43–70 [4]王洪刚, 刘树兵, 李兴锋, 高居荣, 封德顺, 陈冬花. 六个八倍体小偃麦的选育和鉴定. 麦类作物学报, 2006, 26(4): 6–10 Wang H G, Liu S B, Li X F, Gao J R, Feng D S, Chen D H. Breeding and identification of six octoploid Trititrigia. J Triticeae Crops, 2006, 26(4): 6–10 (in Chinese with English abstract) [5]Liu S B, Wang H G, Zhang X Y, Li X F, Li D Y, Duan X Y, Zhou Y L. Molecular cytogenetic identification of a wheat–Thinopyrum intermedium (Host) Barkworth & DR Dewey partial amphiploid resistant to powdery mildew. J Integr Plant Biol, 2005, 47: 726–733 [6]Bao Y G, Li X F, Liu S B, Cui F, Wang H G. Molecular cytogenetic characterization of a new wheat-Thinopyrum intermedium partial amphiploid resistant to powdery mildew and stripe rust. Cytogenet Genome Res, 2009, 126: 390–395 [7]Bao Y G, Wu X, Zhang C, Li X F, He F, Qi X L, Wang H G. Genomic compositions and reactions to powdery mildew and stripe rust of four novel wheat Thinopyrum intermedium partial amphiploids. J Genet Genomics, 2014, 42: 663–666 [8]张学勇, 董玉琛. 小麦与彭梯卡堰麦草杂种及其衍生后代的细胞遗传学研究: II. 来自小麦和彭梯卡(长穗)偃麦草及中间偃麦草杂种后代11个八倍体小偃麦的比较研究. 遗传学报, 1994, 21: 287–296 Zhang X Y, Dong Y C. Cytogenetic research on hybrids of Triticum with Thinopyrum ponticum and their derivatives: II. Comparative research of 11 partial amphiploids derived from hybrid offspring of T. aestivum with both Th. ponticum and Th. intermedium. Acta Genet Sin, 1994, 21: 287–296 (in Chinese with English abstract) [9]Chen Q, Conner R L, Laroche A, Thomas J B. Genome analysis of Thinopyrum intermedium and Th. ponticum using genomic in situ hybridization. Genome, 1998, 41: 580–586 [10]Chen Q, Conner R L, Ahmad F, Laroche A, Fedak G, Thomas J B. Molecular characterization of the genome composition of partial amphiploids derived from Triticum aestivum × Thinopyrum ponticum and T. aestivum × Th. intermedium as sources of resistance to Wheat streak mosaic virus and its vector, Aceria tosichella. Theor Appl Genet, 1998, 97: 1–8 [11]Chen Q, Conner R L, Laroche A, Ji W Q, Armstrong K C, Fedak G. Genomic in situ hybridization analysis of Thinopyrum chromatin in a wheat–Th. intermedium partial amphiploid and six derived chromosome addition lines. Genome, 1999, 42: 1217–1223 [12]Chen Q, Conner R L, Li H, Sun S C, Ahmad F, Laroche A, Graf R J. Molecular cytogenetic discrimination and reaction to Wheat streak mosaic virus and the wheat curl mite in Zhong series of wheat–Thinopyrum intermedium partial amphiploids. Genome, 2003, 46: 135–145 [13]Han F P, Liu B, Fedak G, Liu Z H. Genomic constitution and variation in five partial amphiploids of wheat–Thinopyrum intermedium as revealed by GISH, multicolor GISH and seed storage protein analysis. Theor Appl Genet, 2004, 109: 1070–1076 [14]Kruppa K, Molnár-Láng M. Simultaneous visualization of different genomes (J, JSt and St) in a Thinopyrum intermedium × Thinopyrum ponticum synthetic hybrid (Poaceae) and in its parental species by multicolour genomic in situ hybridization (mcGISH). Comp Cytogenet, 2016, 10: 283–293 [15]Zhang X Y, Koul A, Petroski R, Ouellet T, Fedak G. Molecular verification and characterization of BYDV-resistant germplasm derived from hybrids of wheat with Thinopyrum ponticum and Th. intermedium. Theor Appl Genet, 1996, 93: 1033–1039 [16]Fedak G, Chen Q, Conner R L, Laroche A, Petroski R, Armstrong K W. Characterization of wheat–Thinopyrum partial amphiploids by meiotic analysis and genomic in situ hybridization. Genome, 2000, 43: 712–719 [17]Yang Z J, Li G R, Chang Z J, Zhou J P, Ren Z L. Characterization of a partial amphiploid between Triticum aestivum cv. Chinese Spring and Thinopyrum intermedium ssp. trichophorum. Euphytica, 2006, 149: 11–17 |
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