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Vernalization, the acceleration of flowering by a long
period of cold temperature, ensures that many plants overwinter
vegetativelyand flower in spring. In Arabidopsis, allelic
variation at theFRIGIDA (FRI) locus is a major
determinant of natural variationin flowering time. Dominant alleles of
FRI confer late flowering,which is reversed to earliness by
vernalization. We cloned FRIand analyzed the molecular
basis of the allelic variation. Mostof the early-flowering ecotypes
analyzed carry FRI alleles containingone of two different
deletions that disrupt the open reading frame.Loss-of-function
mutations at FRI have thus provided the basisfor the
evolution of many early-flowering ecotypes.
1 Department of Molecular Genetics, John Innes
Centre, Norwich NR4 7UH, UK.
2 Department of
Biochemistry, University of Wisconsin, Madison, WI 53706, USA.
*
Present address: Department of Plant Biochemistry, Lund
University, Post Office Box 117, SE-221 00 Lund, Sweden.
To whom correspondence should be addressed. E-mail:
caroline.dean{at}bbsrc.ac.uk
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Plant Physiology
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A Comparison of Two Nicotiana attenuata Accessions Reveals Large Differences in Signaling Induced by Oral Secretions of the Specialist Herbivore Manduca sexta.
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Inaugural Article: Histone arginine methylation is required for vernalization-induced epigenetic silencing of FLC in winter-annual Arabidopsis thaliana.
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Genetics
175, 1441-1450
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SUPPRESSOR OF FRI 4 encodes a nuclear-localized protein that is required for delayed flowering in winter-annual Arabidopsis.
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Development
133, 1241-1252
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FLOWERING LOCUS C Mediates Natural Variation in the High-Temperature Response of the Arabidopsis Circadian Clock.
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PLANT CELL
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Genetics
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Genetics
172, 557-567
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FRIGIDA-ESSENTIAL 1 interacts genetically with FRIGIDA and FRIGIDA-LIKE 1 to promote the winter-annual habit of Arabidopsis thaliana.
R. J. Schmitz, L. Hong, S. Michaels, and R. M. Amasino (2005)
Development
132, 5471-5478
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Establishment of the Vernalization-Responsive, Winter-Annual Habit in Arabidopsis Requires a Putative Histone H3 Methyl Transferase.
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PLANT CELL
17, 3301-3310
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SUPPRESSOR OF FRIGIDA3 Encodes a Nuclear ACTIN-RELATED PROTEIN6 Required for Floral Repression in Arabidopsis.
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PLANT CELL
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An allelic series reveals essential roles for FY in plant development in addition to flowering-time control.
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Development
132, 3597-3607
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Natural Variation in Arabidopsis. How Do We Find the Causal Genes?.
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Plant Physiology
138, 567-568
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Role of FRIGIDA and FLOWERING LOCUS C in Determining Variation in Flowering Time of Arabidopsis.
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Plant Physiology
138, 1163-1173
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Plant Physiology
137, 1037-1048
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Quantitative trait locus mapping and DNA array hybridization identify an FLM deletion as a cause for natural flowering-time variation.
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Photoperiod Regulates Flower Meristem Development in Arabidopsis thaliana.
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PNAS
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Genetics
168, 1627-1638
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A Mechanism Related to the Yeast Transcriptional Regulator Paf1c Is Required for Expression of the Arabidopsis FLC/MAF MADS Box Gene Family.
S. Oh, H. Zhang, P. Ludwig, and S. van Nocker (2004)
PLANT CELL
16, 2940-2953
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Vernalization, Competence, and the Epigenetic Memory of Winter.
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PLANT CELL
16, 2601-2613
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Genetics
167, 1361-1369
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PLANT CELL
16, S18-S31
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Plant Physiology
135, 444-458
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PNAS
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Exploiting quantitative trait loci in gene discovery.
S. Hake and T. Rocheford (2004)
Genes & Dev.
18, 597-601
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Natural genetic variation in Arabidopsis identifies BREVIS RADIX, a novel regulator of cell proliferation and elongation in the root.
C. F. Mouchel, G. C. Briggs, and C. S. Hardtke (2004)
Genes & Dev.
18, 700-714
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The Wheat VRN2 Gene Is a Flowering Repressor Down-Regulated by Vernalization.
L. Yan, A. Loukoianov, A. Blechl, G. Tranquilli, W. Ramakrishna, P. SanMiguel, J. L. Bennetzen, V. Echenique, and J. Dubcovsky (2004)
Science
303, 1640-1644
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FRIGIDA-related genes are required for the winter-annual habit in Arabidopsis.
S. D. Michaels, I. C. Bezerra, and R. M. Amasino (2004)
PNAS
101, 3281-3285
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Light signals, phytochromes and cross-talk with other environmental cues.
Dissection of floral induction pathways using global expression analysis.
M. Schmid, N. H. Uhlenhaut, F. Godard, M. Demar, R. Bressan, D. Weigel, and J. U. Lohmann (2003)
Development
130, 6001-6012
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Regulation of Flowering Time by Histone Acetylation in Arabidopsis.
The Role of Cryptochrome 2 in Flowering in Arabidopsis.
S. El-Din El-Assal, C. Alonso-Blanco, A. J.M. Peeters, C. Wagemaker, J. L. Weller, and M. Koornneef (2003)
Plant Physiology
133, 1504-1516
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Mapping of Quantitative Trait Loci Controlling Adaptive Traits in Coastal Douglas Fir. III. Quantitative Trait Loci-by-Environment Interactions.
K. D. Jermstad, D. L. Bassoni, K. S. Jech, G. A. Ritchie, N. C. Wheeler, and D. B. Neale (2003)
Genetics
165, 1489-1506
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DETERMINATE and LATE FLOWERING Are Two TERMINAL FLOWER1/CENTRORADIALIS Homologs That Control Two Distinct Phases of Flowering Initiation and Development in Pea.
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PLANT CELL
15, 2742-2754
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