Scientia Agricultura Sinica ›› 2015, Vol. 48 ›› Issue (10): 2007-2016.doi: 10.3864/j.issn.0578-1752.2015.10.013
• HORTICULTURE • Previous Articles Next Articles
LIU Dan1, SUN Xin1, MU Qian1, WU Wei-min2, ZHANG Zhen1, FANG Jing-gui1
| [1] Carmona M J, Chaïb J, Martínez-Zapater J M, Thomas M R. A molecular genetic perspective of reproductive development in grapevine. Journal of Experimental Botany, 2008, 59: 2579.
[2] 房经贵, 刘崇怀. 葡萄分子生物学. 北京: 科学出版社, 2014: 26-27.
Fang J G, Liu C H. Grape Molecular Biology [M]. Beijing: Science Press, 2014: 26-27. (in Chinese)
[3] Vasconcelos M C, Greveb M, Winefield C S, Throught M C T, Raw V. The Flowering process of Vitis vinifera: A review. American Journal Enology and Viticulture, 2009, 60: 411-434.
[4] Carmona M J, Cubas P, Calonje M, Martínez-Zapater J M. Flowering transition in grapevine (Vitis Vinifera L.). Canadian Journal of Botany, 2007, 85: 701-711.
[5] 曹尚银, 张秋明, 吴顺. 果树花芽分化机理研究进展. 果树学报, 2003, 20: 345-350.
Cao S Y, Zhang Q M, Wu S. Advances in Research on the mechanism of flower-bud differentiation of fruit trees. Journal of Fruit Science, 2003, 20: 345-350. (in Chinese)
[6] 李宪利, 袁志友, 李凌浩, 韩兴国. 葡萄的成花过程及其影响因素. 果树学报, 2002, 19(5): 330-335.
Li X L, Yuan Z Y, Li L H, Hang X G. Process of flower formation and influencing factors in grapevine. Journal of Fruit Science, 2002, 19: 330-335. (in Chinese)
[7] 刘丹, 慕茜, 李晓鹏, 刘更森, 李玉, 张彦苹, 房经贵. 基于EST数据库的葡萄成花途径的预测及分析. 园艺学报, 2014, 41: 26-34.
Liu D, Mu Q, Li X P, Liu G S, Li Y, Zhang Y P, Fang J G. Forecasting analysis of the grape flowering pathway based on the grape EST database. Acta Horticulturae Sinica, 2014, 41: 26-34. (in Chinese)
[8] Coresier L, Vincent C, Jang S. Fornara F, Fan Q Z, Searle I, Giakountis A, Farrona S, Gissot L, Turnbull C, Coupland G. FT protein movement contributes to long-distance singnaling in floral induction of Arabidopsis. Science, 2007, 316: 1030-1033.
[9] 慕茜, 刘更森, 孙欣, 李玉, 陶然, 王晨, 房经贵. 冬季休眠后期藤稔葡萄花芽发育相关基因表达的分析. 园艺学报, 2013, 40: 828-838.
Mu Q, Liu G S, Sun X, Li Y, Tao R, Wang C, Fang J G.. Analysis of expression levels of floral genes during the late dormancy stage of ‘Fujiminori’ grapevine. Acta Horticulturae Sinica, 2013, 40: 828-838. (in Chinese)
[10] Wellmer F, Riechmann J L, Alves-Ferreira M, Meyerowitz E M. Genome-wide analysis of spatial gene expression in Aradidopsis flowers. Plant Cell, 2004, 16: 1314-1326.
[11] Ferrándiz C, Gu Q, Martienssen R, Yanofsky M F. Redundant regulation of meristem identity and plant architecture by FRUITFULL, APETALA1 and CAULIFLOWER. Development, 2000, 127: 725-734.
[12] Theissen G. Development of floral organ identity: stories from the MADS house. Current Opinion in Plant Biology, 2001, 4: 75-85.
[13] Zahn L M, Kong H, Leebens-Mack J H, Kim S, Soltis P S, Landherr L L, Soltis D E, Depamphillis C W, Ma H. The evoulation of the SEPALLATA subfamily of MADS-box genes: a preangiosperm origin with multiple duplications throughout angiosperm history. Genetics, 2005, 169: 2209-2223.
[14] Flamagan C A, Ma H. Spatially and temporally regulated expression of the MADS-box gene AGL2 in wild-type and mutant Arabidopsis flowers. Plant Molecular Biology, 1994, 26: 581-595.
[15] Huang T, Bohlenius H, Eriksson S, Parcy F, Nilsson O. The mRNA of the Arabidopsis gene FT moves from leaf to shoot apex and induces flowering. Science, 2005, 309: 1694-1696.
[16] Poupin M J, Federici F, Medina C. Isolation of the three grape sub-lineages of B-class MADS-box TM6, PISTILLATA and APETALA3 genes which are differentially expressed during flower and fruit development. Gene, 2007, 404: 10-24.
[17] Boss P K, Vivier M, Matsumoto S, Dry I B, Thomas M R. A cDNA from grapevine (Vitis vinifera L.), which shows homology to AGAMOUS and SHATTERPOOF, is not only expressed in flowers but also throughout berry development. Plant Molecular Biology, 2001, 45: 541-553.
[18] Calonje M J, Cubas P, Martínez-Zapater J M, Carmona M J. Floral meristem identity genes are expressed during tendril development in grapevine. Plant Physiology, 2004, 135: 1491-1501.
[19] Miccaels S D, Amasino R M. Flowering locus C encodes a novel MADS domain protein that acts as a repressor of flowering. Plant Cell, 1999: 949-956.
[20] 杨光, 岳林旭, 王晨, 谭洪花, 曹雪, 房经贵. 葡萄9个重要花发育相关基因在藤稔葡萄夏芽成花过程中的表达. 果树学报, 2010, 27: 892-897.
Yang G, Yue L X, Wang C, Tan H H, Cao X, Fang J G. Expression of nine important floral genes during flower differentiation and development of the summer buds of grapevine cv. Fujiminori. Journal of Fruit Science, 2010, 27: 892-897. (in Chinese)
[21] 张彦苹, 王晨, 于华平, 蔡斌华, 房经贵. 适于葡萄不同组织RNA提取方法的筛选. 西北农业学报, 2010, 19: 135-140.
Zhang Y P, Wang C, Yu H P, Cai B H, Fang J G. Screening of RNA extraction methods for various grapevine organs and tissues. Acta Agriculturae Boreali-Occidentalis Sinica, 2010, 19: 135-140. (in Chinese)
[22] Chang S, Puryear J, Cairney J. A simple and efficient method for isolating RNA from pine trees. Plant Molecular Biology Reporter, 1993, 11: 113-116.
[23] 王晨, 刘洪, 房经贵, 宋长年, 曹雪, 杨光, 章镇. 基于EST数据库的葡萄APETALA2基因cDNA克隆及其表达分析. 果树学报, 2010, 27: 207-212.
Wang C, Liu H, Fang J G, Song C N, Cao X, Yang G, Zhang Z. Cloning and expression analysis of APETALA2 gene from grapevine (Vitis vinifera) based on EST database. Journal of Fruit Science, 2010, 27: 207-212. (in Chinese)
[24] 任国慧, 陶然, 王晨, 孙欣, 房经贵. 葡萄浆果着色与UFGT和MYBA基因表达量的关系研究. 南京农业大学学报, 2013, 36: 30-36.
Ren G H, Tao R, Wang C, Sun X, Fang J G. The research of the relationship between coloring and UFGT and MYBA gene expression level of the grape berry. Journal of Nanjing Agricultural University, 2013, 36: 30-36. (in Chinese)
[25] Ramakers C, Ruijera J M, Lekane Deprez R H, Moorman A F. Assumption-free analysis of quantitative real-time polymerasechain reaction (PCR) data. Neuroscience Letters, 2003, 339: 62-66.
[26] 郭磊, 王晨, 曹雪, 杨光, 慕茜, 房经贵. 葡萄夏芽成花过程中相关基因的cDNA-RAPD分析. 华北农学报, 2011, 26: 43-48.
Guo L, Wang C, Cao X, Yang G, Mu Q, Fang J G. cDNA-RAPD analysis on genes during flower differentiation and development of the summer buds of grapevine. Acta Agriculturae Boreali-Sinica, 2011, 26: 43-48. (in Chinese)
[27] 晁无疾, 王铮, 周敏, 余念. 葡萄栽培品种花芽高节位分化观察研究. 中外葡萄与葡萄酒, 2002, 1: 18-21.
Chao W J, Wang Z, Zhou M, Yu N. Observation on the differentiation of flower bud in high position of grape shoot. Sino-overseas Grapevine & Wine, 2002, 1: 18-21. (in Chinese) |
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