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Effects of Sugar on Vegetative Development and Floral Transition in Arabidopsis

Overview
Journal Plant Physiol
Specialty Physiology
Date 2001 Sep 13
PMID 11553753
Citations 115
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Abstract

Although sugar has been suggested to promote floral transition in many plant species, growth on high concentrations (5% [w/v]) of sucrose (Suc) significantly delayed flowering time, causing an increase in the number of leaves at the time of flowering in Arabidopsis. The effect of high concentrations of Suc seemed to be metabolic rather than osmotic. The delay of floral transition was due to extension of the late vegetative phase, which resulted in a delayed activation of LFY expression. In addition, growth on low concentrations (1% [w/v]) of Suc slightly inhibited flowering in wild-type plants. This delay resulted from effects on the early vegetative phase. This inhibition was more pronounced in tfl1, an early flowering mutant, than in the wild type. Although 1% (w/v) Suc was reported to promote floral transition of late-flowering mutants such as co, fca, and gi, floral transition in these mutants was delayed by a further increase in Suc concentration. These results suggest that sugar may affect floral transition by activating or inhibiting genes that act to control floral transition, depending on the concentration of sugars, the genetic background of the plants, and when the sugar is introduced. Growth on 1% (w/v) Suc did not restore the reduced expression levels of FT and SOC1/AGL20 in co or fca mutants. Rather, expression of FT and SOC1/AGL20 was repressed by 1% (w/v) Suc in wild-type background. The possible effects of sugar on gene expression to promote floral transition are discussed.

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References
1.
Koornneef M, Hanhart C, van der Veen J . A genetic and physiological analysis of late flowering mutants in Arabidopsis thaliana. Mol Gen Genet. 1991; 229(1):57-66. DOI: 10.1007/BF00264213. View

2.
Corbesier L, Lejeune P, Bernier G . The role of carbohydrates in the induction of flowering in Arabidopsis thaliana: comparison between the wild type and a starchless mutant. Planta. 1998; 206(1):131-7. DOI: 10.1007/s004250050383. View

3.
Roldan M, Gomez-Mena C, Ruiz-Garcia L, Salinas J, Martinez-Zapater J . Sucrose availability on the aerial part of the plant promotes morphogenesis and flowering of Arabidopsis in the dark. Plant J. 2000; 20(5):581-90. DOI: 10.1046/j.1365-313x.1999.00632.x. View

4.
Lee H, Suh S, Park E, Cho E, Ahn J, Kim S . The AGAMOUS-LIKE 20 MADS domain protein integrates floral inductive pathways in Arabidopsis. Genes Dev. 2000; 14(18):2366-76. PMC: 316936. DOI: 10.1101/gad.813600. View

5.
Telfer A, Bollman K, Poethig R . Phase change and the regulation of trichome distribution in Arabidopsis thaliana. Development. 1997; 124(3):645-54. DOI: 10.1242/dev.124.3.645. View