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SRR1 is Essential to Repress Flowering in Non-inductive Conditions in Arabidopsis Thaliana

Overview
Journal J Exp Bot
Specialty Biology
Date 2014 Aug 18
PMID 25129129
Citations 16
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Abstract

Timing of flowering is determined by environmental and developmental signals, leading to promotion or repression of key floral integrators. SENSITIVITY TO RED LIGHT REDUCED (SRR1) is a pioneer protein previously shown to be involved in regulation of the circadian clock and phytochrome B signalling in Arabidopsis thaliana. This report has examined the role of SRR1 in flowering time control. Loss-of-function srr1-1 plants flowered very early compared with the wild type under short-day conditions and had a weak flowering response to increasing daylength. Furthermore, FLOWERING LOCUS T (FT) transcript levels were elevated already in short days in srr1-1 compared with the wild type. This correlated with elevated end of day levels of CONSTANS (CO), whereas levels of CYCLING DOF FACTOR 1 (CDF1), a repressor of CO transcription, were reduced. srr1-1 gi-2 and srr1-1 co-9 double mutants showed that SRR1 can also repress flowering independently of the photoperiodic pathway. srr1-1 flowered consistently early between 16 °C and 27 °C, showing that SRR1 prevents premature flowering over a wide temperature range. SRR1 also promotes expression of the repressors TEMPRANILLO 1 (TEM1) and TEM2. Consequently their targets in the gibberellin biosynthesis pathway were elevated in srr1-1. SRR1 is thus an important focal point of both photoperiodic and photoperiod-independent regulation of flowering. By stimulating expression of the FT-binding repressors CDF1, TEM1 and TEM2, and FLC, flowering is inhibited in non-inductive conditions.

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References
1.
Lee J, Yoo S, Park S, Hwang I, Lee J, Ahn J . Role of SVP in the control of flowering time by ambient temperature in Arabidopsis. Genes Dev. 2007; 21(4):397-402. PMC: 1804328. DOI: 10.1101/gad.1518407. View

2.
Porri A, Torti S, Romera-Branchat M, Coupland G . Spatially distinct regulatory roles for gibberellins in the promotion of flowering of Arabidopsis under long photoperiods. Development. 2012; 139(12):2198-209. DOI: 10.1242/dev.077164. View

3.
Streitner C, Koster T, Simpson C, Shaw P, Danisman S, Brown J . An hnRNP-like RNA-binding protein affects alternative splicing by in vivo interaction with transcripts in Arabidopsis thaliana. Nucleic Acids Res. 2012; 40(22):11240-55. PMC: 3526319. DOI: 10.1093/nar/gks873. View

4.
Schaffer R, Ramsay N, Samach A, Corden S, Putterill J, Carre I . The late elongated hypocotyl mutation of Arabidopsis disrupts circadian rhythms and the photoperiodic control of flowering. Cell. 1998; 93(7):1219-29. DOI: 10.1016/s0092-8674(00)81465-8. View

5.
Kolmos E, Nowak M, Werner M, Fischer K, Schwarz G, Mathews S . Integrating ELF4 into the circadian system through combined structural and functional studies. HFSP J. 2010; 3(5):350-66. PMC: 2801535. DOI: 10.2976/1.3218766. View