Variation in the epigenetic silencing of FLC contributes to natural variation in Arabidopsis vernalization response
- 15 November 2006
- journal article
- Published by Cold Spring Harbor Laboratory in Genes & Development
- Vol. 20 (22) , 3079-3083
- https://doi.org/10.1101/gad.405306
Abstract
Vernalization, the cold-induced acceleration of flowering, involves the epigenetic silencing of the floral repressor gene FLOWERING LOCUS C (FLC). We investigated the molecular basis for variation in vernalization in Arabidopsis natural accessions adapted to different climates. A major variable was the degree to which different periods of cold caused stable FLC silencing. In accessions requiring long vernalization, FLC expression was reactivated following nonsaturating vernalization, but this reactivation was progressively attenuated with increasing cold exposure. This response was correlated with the rate of accumulation of FLC histone H3 Lys 27 trimethylation (H3K27me3). Thus, variation in epigenetic silencing of FLC appears to have contributed to Arabidopsis adaptation.Keywords
This publication has 28 references indexed in Scilit:
- Polycomb-group proteins repressthe floral activator AGL19 in the FLC-independent vernalization pathwayGenes & Development, 2006
- Vernalization sensitivity in Arabidopsis thaliana (Brassicaceae): the effects of latitude and FLC variationAmerican Journal of Botany, 2005
- Diversity of Flowering Responses in Wild Arabidopsis thaliana StrainsPLoS Genetics, 2005
- FRIGIDA-Independent Variation in Flowering Time of Natural Arabidopsis thaliana AccessionsGenetics, 2005
- Role of FRIGIDA and FLOWERING LOCUS C in Determining Variation in Flowering Time of ArabidopsisPlant Physiology, 2005
- The functions of E(Z)/EZH2-mediated methylation of lysine 27 in histone H3Published by Elsevier ,2004
- Interplay between Two Epigenetic MarksCurrent Biology, 2002
- Arabidopsis , the Rosetta Stone of Flowering Time?Science, 2002
- Activation Tagging of the Floral Inducer FTScience, 1999
- FLOWERING LOCUS C Encodes a Novel MADS Domain Protein That Acts as a Repressor of FloweringPlant Cell, 1999