[1] |
Schwarz-Sommer, Z, Huijser, et al. Genetic control of flower development homeotic genes in Antirrhinum majus Science, 250 (1990),p. 931936
|
[2] |
Apple, MS, Paoenicov, et al. Molecular and phylogenetic analyses of the complete MADS-Box transcription factor family in Arabidopsis: new openings to the MADS world Plant Cell, 15 (2003),pp. 1538-1551
|
[3] |
Zhang, HM, Forde, et al. An Arabidopsis MADSbox gene that controls nutrient-induced changes in root architecture Science, 279 (1998),pp. 407-409
|
[4] |
Vrebalov, J, Ruezinsky, et al. MADS-box gene necessary for fruit ripening at the tomato Ripening-inhibitor (Rin) locus Science, 296 (2002),pp. 343-346
|
[5] |
Mauney, JR
|
[6] |
Guo, YL, Xue, et al. Analysis of floral morphology of a cotton homeotic variant (chv1) Acta Biologiae Experimentalis Sinica, 36 (2003),pp. 202-208
|
[7] |
Zheng, SY, Guo, et al. Cloning of a MADS box gene (GhMADS1) from cotton (Gossypium hirsutum L.) Acta Genetic Sinica, 31 (2004),pp. 1136-1141
|
[8] |
Thompson, JD, Gibson, et al. The ClustalX windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools Nucleic Acids Res., 25 (1997),pp. 4876-4882
|
[9] |
Page, RDM TREEVIEW: An application to display phylogenetic trees on personal computers Comp Appl Biosci., 12 (1996),pp. 357-358
|
[10] |
Horsch, RB, Fry, et al. A simple and general method for transferring genes into plants Science, 227 (1985),pp. 1229-1231
|
[11] |
Chaidamsari, T, Samanhudi, et al. Isolation and characterization of an AGAMOUS homologue from cocoa. Plant Sci., 170 (2006),pp. 968-975
|
[12] |
Kramer, EM, Jaramillo, et al. Patterns of gene duplication and functional evolution during the diversification of the AGAMOUS subfamily of MADS box genes in angiosperms Genetics, 166 (2004),pp. 1011-1023
|
[13] |
Theissen, G, Becker, et al. A short history of MADSbox genes in plants Plant Mol Biol., 42 (2000),p. 115149
|
[14] |
Yanofsky, MF, Ma, et al. The protein encoded by the Arabidopsis gene AGAMOUS resembles transcription factors Nature, 346 (1990),pp. 35-39
|
[15] |
Mandel, MA, Bowman, et al. Manipulation of flower structure in transgenic tobacco Cell, 71 (1992),pp. 133-143
|
[16] |
Mizukami, Y, Ma, et al. Ectopic expression of the floral homeotic gene AGAMOUS in transgenic Arabidopsis plants alters floral organ identity Cell, 71 (1992),p. 119131
|
[17] |
Kitahara, K, Hibino, et al. Ectopic expression of the rose AGAMOUS-like MADS-box genes ‘MASAKO C1 and D1’ causes similar homeotic transformation of sepal and petal in Arabidopsis and sepal in Torenia Plant Sci., 166 (2004),pp. 1245-1252
|
[18] |
Benedito, VA, Visser, et al. Ectopic expression of LLAG1, an AGAMOUS homologue from lily (Lilium longiflorum Thunb.) causes floral homeotic modifications in Arabidopsis J Exp Bot., 55 (2004),p. 13911399
|
[19] |
Lemmetyinen, J, Hassinen, et al. Functional characterization of SEPALLATA3 and AGAMOUS orthologues in silver birch Physiol Plant, 121 (2004),pp. 149-162
|
[20] |
Boss, PK, Vivier, et al. A cDNA from grapevine (Vitis vinifera L.), which shows homology to AGAMOUS and SHATTERPROOF, is not only expressed in flowers but also throughout berry development Plant Mol Biol., 45 (2001),pp. 541-553
|
[21] |
Theissen, G Development of floral organ identity: stories from the MADS house Curr Opin Plant Biol., 4 (2001),pp. 475-485
|
[22] |
Pelaz, S, Ditta, et al. Nature, 405 (2000),pp. 200-203
|