Analysis of flowering pathway integrators in Arabidopsis

被引:199
作者
Moon, J
Lee, H
Kim, M
Lee, I [1 ]
机构
[1] Seoul Natl Univ, Dept Biol Sci, Seoul 151742, South Korea
[2] Kyung Hee Univ, Plant Metab Res Ctr, Suwon 449701, South Korea
关键词
flowering; flowering pathway integrators; FT; LFY; SOC1;
D O I
10.1093/pcp/pci024
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Flowering is regulated by an integrated network of several genetic pathways in Arabidopsis. The key genes integrating multiple flowering pathways are FT, SOC1 and LFY. To elucidate the interactions among these integrators, genetic analyses were performed. FT and SOC1 share the common upstream regulators CO, a key component in the long day pathway, and FLC, a flowering repressor integrating autonomous and vernalization pathways. However, the soc1 mutation further delayed the flowering time of long day pathway mutants including ft, demonstrating that SOC1 acts partially independently of FT. Although soc1 did not show an obvious defect in flower meristem determination on its own, it dramatically increased the number of coflorescences in a lfy mutant, which is indicative of a defect in floral initiation. Therefore, double mutant analysis shows that the three integrators have both overlapping and independent functions in the determination of flowering time and floral initiation. The expression analysis showed that FT regulates SOC1 expression, and SOC1 regulates LFY expression, but not vice versa, which is consistent with the fact that FT and LFY have the least overlapping functions among the three integrators. The triple mutation fit soc1 lfy did not block flowering completely under long days, indicating the presence of other integrators. Finally, vernalization accelerated flowering of flc ft soc1 and ft soc1 lfy triple mutants, which shows that the vernalization pathway also has targets other than FLC, FT, SOC1 and LFY. Our genetic analysis reveals the intricate nature of genetic networks for flowering.
引用
收藏
页码:292 / 299
页数:8
相关论文
共 49 条
  • [1] Modulation of floral development by a gibberellin-regulated microRNA
    Achard, P
    Herr, A
    Baulcombe, DC
    Harberd, NP
    [J]. DEVELOPMENT, 2004, 131 (14): : 3357 - 3365
  • [2] Transition from vegetative to reproductive phase
    Araki, T
    [J]. CURRENT OPINION IN PLANT BIOLOGY, 2001, 4 (01) : 63 - 68
  • [3] The Arabidopsis flowering-time gene LUMINIDEPENDENS is expressed primarily in regions of cell proliferation and encodes a nuclear protein that regulates LEAFY expression
    Aukerman, MJ
    Lee, I
    Weigel, D
    Amasino, RM
    [J]. PLANT JOURNAL, 1999, 18 (02) : 195 - 203
  • [4] Regulation of flowering time by FVE, a retinoblastoma-associated protein
    Ausín, I
    Alonso-Blanco, C
    Jarillo, JA
    Ruiz-García, L
    Martínez-Zapater, JM
    [J]. NATURE GENETICS, 2004, 36 (02) : 162 - 166
  • [5] BERNIER G, 1988, ANNU REV PLANT PHYS, V39, P175, DOI 10.1146/annurev.pp.39.060188.001135
  • [6] Gibberellins promote flowering of Arabidopsis by activating the LEAFY promoter
    Blázquez, MA
    Green, R
    Nilsson, O
    Sussman, MR
    Weigel, D
    [J]. PLANT CELL, 1998, 10 (05) : 791 - 800
  • [7] Integration of floral inductive signals in Arabidopsis
    Blázquez, MA
    Weigel, D
    [J]. NATURE, 2000, 404 (6780) : 889 - 892
  • [8] Blazquez MA, 1997, DEVELOPMENT, V124, P3835
  • [9] A MADS domain gene involved in the transition to flowering in Arabidopsis
    Borner, R
    Kampmann, G
    Chandler, J
    Gleissner, R
    Wisman, E
    Apel, K
    Melzer, S
    [J]. PLANT JOURNAL, 2000, 24 (05) : 591 - 599
  • [10] Multiple pathways in the decision to flower: Enabling, promoting, and resetting
    Boss, PK
    Bastow, RM
    Mylne, JS
    Dean, C
    [J]. PLANT CELL, 2004, 16 (SUPPL.) : S18 - S31