作物学报 ›› 2010, Vol. 36 ›› Issue (3): 385-390.doi: 10.3724/SP.J.1006.2010.00385
张晶1,吴锁伟1,刘秉华1,宋梅芳2,周朋1,郭春燕3,詹克慧3,王山荭1,杨丽1,董冬1,于立强4,李辉利4,周阳1*,杨建平1*
ZHANG Jing1, WU Suo-Wei1, LIU Bing-Hua1, SONG Mei-Fang2, ZHOU Peng1, GUO Chun-Yan3, ZHAN Ke-Hui3, WANG Shan-Hong1, YANG Li1, DONG Dong1, YU Li-Qiang4, LI Hui-Li4, ZHOU Yang1,*, and YANG Jian-Ping1,*
摘要:
| [1] Zhai P M, Chao Q C, Zou X K. Progress in China’s climate change study in the 20th century. J Geogr Sci, 2004, 14(suppl): 3-11[2] Shi P-J(史培军), Wang J-A(王静爱), Xie Y(谢云), Wang P(王平), Zhou W-G(周武光). A preliminary study on the climatic change, natural disasters of agriculture and grain yield in China in the past 15 years. J Nat Resour (自然资源学报), 1997, 12(3): 197-203 (in Chinese with English abstract)[3] Yang Z-Q(杨宗渠), Yin J(尹钧), Zhou R(周冉), Li J-C(李金才). Study on vernalization character of different genotypes of wheat from Huanghuai wheat production area. J Triticeae Crops (麦类作物学报), 2006, 26(2): 82-85 (in Chinese with English abstract)[4] Li M-S(李茂松), Wang D-L(王道龙), Zhang Q(张强), Chi Y-G(迟永刚), Wang C-Y(王春艳), Kiribuchi C O, Yoshida H. Cold damage of autumn sown wheat in Huang-Huai-Hai River reaches in 2004-2005 growing season. J Nat Disasters (自然灾害学报), 2005, 14(4): 51-55 (in Chinese)[5] Distelfeld A, Li C, Dubcovsky J. Regulation of flowering in temperate cereals. Curr Opin Plant Biol, 2009, 12: 1-7[6] Zhang X K, Xiao Y G, Zhang Y, Xia X C, Dubcovsky J, He Z H. Allelic variation at the vernalization genes Vrn-A1, Vrn-B1, Vrn-D1 and Vrn-B3 in Chinese wheat cultivars and their association with growth habit. Crop Sci, 2008, 48: 458-470[7] Trevaskis B, Hemming M N, Dennis E S, Peacock J. The molecular basis of vernalization-induced flowering in cereals. Trends Plant Sci, 2007, 12: 352-357[8] Greenup A, Peacock W J, Dennis E S, Trevaskis B. The molecular biology of seasonal flowering-responses in Arabidopsis and the cereals. Ann Bot (Lond), 2009, 103: 1165-1172[9] Dubcovsky J, Loukoianov A, Fu D L, Valarik M, Sanchez A, Yan L L. Effect of photoperiod on the regulation of wheat vernalization genes VRN1 and VRN2. Plant Mol Biol, 2006, 60: 469-480[10] Yan L L, Loukoianov A, Tranquilli G, Helguera M, Fahima T, Dubcovsky J. Positional cloning of the wheat vernalization gene VRN1. Proc Natl Acad Sci USA, 2003, 100: 6263-6368[11] Dubcovsky J, Lijavetzky D, Appendino L, Tranquilli G. Comparative RFLP mapping of Triticum monococcum genes controlling vernalization requirement. Theor Appl Genet, 1998, 97: 968-975[12] Law C N, Worland A J, Giorgi B. The genetic control of ear-emergence time by chromosomes 5A and 5D of wheat. Heredity, 1975, 36: 49-58[13] Galiba G, Quarrie S A, Sutka J, Morgounov A, Snape J W. RFLP mapping of the vernalization (Vrnl) and frost resistance (Frl) genes on chromosome 5A of wheat. Theor Appl Genet, 1995, 90: 1174-1179[14] Iwaki K, Nishida J, Yanagisawa T, Yoshida H, Kato K. Genetic analysis of Vrn-B1 for vernalization requirement by using linked dCAPS markers in bread wheat (Triticum aestivum L.). Theor Appl Genet, 2002, 104: 571-576[15] Barrett B, Bayram M, Kidwell K. Identifying AFLP and microsatellite markers for vernalization response gene Vrn-B1 in hexaploid wheat using reciprocal mapping populations. Plant Breed, 2002,121:400-406[16] Yan L L, Fu D L, Li C, Blechl A, Tranquilli G, Bonafede M, Sanchez A, Valarik M, Yasuda S, Dubcovsky J. The wheat and barley vernalization gene VRN3 is an orthologue of FT. Proc Natl Acad Sci USA, 2006, 103: 19581-19586[17] Fu D L, Szucs P, Yan L L, Helguera M, Skinner J S, Zitzewitz J V, Hayes P M, Dubcovsky J. Large deletions within the first intron in VRN-1 are associated with spring growth habit in barley and wheat. Mol Genet Genomics, 2005, 273: 54-65[18] Yan L L, Helguera M, Kato K, Fukuyama S, Sherman J, Dubcovsky J. Allelic variation at the VRN-1 promoter region in polyploidy wheat. Theor Appl Genet, 2004, 109: 1677-1686[19] Chen D H, Ronald P C. A rapid DNA minipreparation method suitable for AFLP and other PCR applications. Plant Mol Biol Rep, 1999, 17: 53-57[20] Pugsley A T. The impact of plant physiology on Australian wheat breeding. Euphytica, 1983, 32: 743-748[21] Sun Q M, Zhou R H, Gao L F, Zhao G Y, Jia J Z. The characterization and geographical distribution of the genes responsible for vernalization requirement in Chinese bread wheat. J Integr Plant Biol, 2009, 51: 423-432 |
| [1] | 翟胜男, 曹新有, 李豪圣, 李吉虎, 李法计, 刘金栋, 夏先春, 吕莹莹, 马瑞峰, 王颖, 耿洪伟, 刘建军. 小麦Pod-A1、Pod-D1和Pod-2D位点等位变异对籽粒过氧化物酶活性的遗传效应分析[J]. 作物学报, 2026, 52(6): 1593-1603. |
| [2] | 彭佳泺, 李颖, 李丹丹, 杨军宁, 郭学峰, 张文姣, 俞晓雪, 周亚荣, 王振玉, 王彩香, 马雄风, 宿俊吉. 陆地棉I类LBD家族成员鉴定及GhLBD6调控开花期的功能和单倍型分析[J]. 作物学报, 2026, 52(6): 1682-1697. |
| [3] | 张献丰, 郭利建, 李康春, 孔斌雪, 刘玉芳, 车卓, 杨德龙. 小麦ABHD6基因家族鉴定与粒重功能标记开发[J]. 作物学报, 2026, 52(6): 1711-1727. |
| [4] | 王楚锐, 李开祥, 赵志, 肖麓, 唐国永, 赵志刚, 徐亮, 杜德志, 柳海东. 甘蓝型春油菜早花基因BnCRY2功能位点KASP标记的开发及应用[J]. 作物学报, 2026, 52(3): 708-721. |
| [5] | 王粤生, 葛冬冬, 程兰斐, 陈春环, 王长有, 刘新伦, 李停栋, 邓平川, 吉万全, 赵继新. 小麦-华山新麦草二体异代换系16DH25-7的分子细胞遗传学及抗病性鉴定[J]. 作物学报, 2026, 52(2): 433-445. |
| [6] | 展宗冰, 靳奇峰, 刘迪, 吕迎春, 郭莹, 张雪婷, 虎梦霞, 王尚, 杨芳萍. 甘肃省小麦农家种老芒麦分子鉴定及其重要性状评价[J]. 作物学报, 2025, 51(3): 609-620. |
| [7] | 徐晓伟, 冯晶, 王凤涛, 童朝阳, 张建周, 李春盈, 蔺瑞明. 小麦地方品种蚕老麦成株抗条锈病QTL定位[J]. 作物学报, 2025, 51(11): 2933-2943. |
| [8] | 田汉钊, 冯龙婷, 应开, 孟天琪, 武军, 刘玉秀. 外引小麦种质麦谷蛋白亚基组成及评价[J]. 作物学报, 2025, 51(10): 2663-2680. |
| [9] | 刘鑫源, 程宇坤, 王丽丽, 战帅帅, 马孟瑶, 郭玲, 耿洪伟. 新疆小麦过氧化物酶活性基因TaPod-A1、TaPod-A3和TaPod-D1等位变异及分布规律[J]. 作物学报, 2025, 51(1): 68-78. |
| [10] | 艾莎, 李莎, 方治伟, 李论, 李甜甜, 高利芬, 陈利红, 肖华锋, 万人静, 闫多子, 武星廷, 彭海, 韩瑞玺, 周俊飞. 棉花MNP标记位点开发及其在DNA指纹图谱构建中的应用[J]. 作物学报, 2024, 50(9): 2267-2278. |
| [11] | 裴法敬, 张文轩, 张晓, 王昕钰, 彭少兵, 米甲明. 长粒香型的超短生育期水稻新品系创制[J]. 作物学报, 2024, 50(7): 1684-1698. |
| [12] | 范子培, 李龙, 史雨刚, 孙黛珍, 李超男, 景蕊莲. 小麦TabHLH112-2B基因克隆及每穗小穗数相关功能标记开发[J]. 作物学报, 2024, 50(2): 403-413. |
| [13] | 柯会锋, 苏红梅, 孙正文, 谷淇深, 杨君, 王国宁, 徐东永, 王洪这, 吴立强, 张艳, 张桂寅, 马峙英, 王省芬. 棉花现代品种资源产量与纤维品质性状鉴定及分子标记评价[J]. 作物学报, 2024, 50(2): 280-293. |
| [14] | 陈天, 李昱樱, 荣二花, 吴玉香. 棉属人工异源四倍体后代性状鉴定及花器转录组学分析[J]. 作物学报, 2024, 50(2): 325-339. |
| [15] | 谭丹, 陈家婷, 郜钰, 张晓军, 李欣, 闫贵云, 李锐, 陈芳, 常利芳, 张树伟, 郭慧娟, 畅志坚, 乔麟轶. 小麦穗型相关生长素通路基因发掘及TaARF23-A与小穗数关联分析[J]. 作物学报, 2024, 50(2): 506-513. |
|
||