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. 2022 May;45(5):1428-1441.
doi: 10.1111/pce.14258. Epub 2022 Feb 9.

Conserved and distinct roles of H3K27me3 demethylases regulating flowering time in Brassica rapa

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Free article

Conserved and distinct roles of H3K27me3 demethylases regulating flowering time in Brassica rapa

Laura Poza-Viejo et al. Plant Cell Environ. 2022 May.
Free article

Abstract

Epigenetic regulation is necessary for optimal organism development and preservation of gene expression profiles in the cell. In plants, the trimethylation of histone H3 lysine 27 (H3K27me3) is a silencing epigenetic mark relevant for developmental transitions like flowering. The floral transition is a key agronomic trait; however, the epigenetic mechanisms of flowering time regulation in crops remain poorly understood. Here we study the Jumonji H3K27me3 demethylases BraA.REF6 and BraA.ELF6 in Brassica rapa. Phenotypic characterization of novel mutant lines and genome-wide H3K27me3 chromatin immunoprecipitation and transcriptomic analyses indicated that BraA.REF6 plays a greater role than BraA.ELF6 in fine-tuning H3K27me3 levels. In addition, we found that braA.elf6 mutants were early flowering due to high H3K27me3 levels at B. rapa homologs of the floral repressor FLC. Unlike mutations in Arabidopsis thaliana, braA.ref6 mutants were late flowering without altering the expression of B. rapa FLC genes. Remarkably, we found that BraA.REF6 regulated a number of gibberellic acid (GA) biosynthetic genes, including a homolog of GA1, and that GA-treatment complemented the late flowering mutant phenotype. This study increases our understanding of the epigenetic regulation of flowering time in B. rapa, highlighting conserved and distinct regulatory mechanisms between model and crop species.

Keywords: Brassica rapa; epigenetics; flowering; gibberellins; histone demethylase.

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References

REFERENCES

    1. Akter, A., Itabashi, E., Kakizaki, T., Okazaki, K., Dennis, E.S. & Fujimoto, R. (2021) Genome triplication leads to transcriptional divergence of FLOWERING LOCUS C genes during vernalization in the genus Brassica. Frontiers in Plant Science, 11, 1-9.
    1. Akter, A., Takahashi, S., Deng, W., Shea, D.J., Itabashi, E., Shimizu, M. et al. (2019) The histone modification H3 lysine 27 tri-methylation has conserved gene regulatory roles in the triplicated genome of Brassica rapa L. DNA Research, 26, 433-443.
    1. Amasino, R. (2010) Seasonal and developmental timing of flowering. The Plant Journal, 61, 1001-1013.
    1. Anders, S., Pyl, P.T. & Huber, W. (2015) HTSeq-A Python framework to work with high-throughput sequencing data. Bioinformatics, 31, 166-169.
    1. Antunez-Sanchez, J., Naish, M., Ramirez-Prado, J.S., Ohno, S., Huang, Y., Dawson, A. et al. (2020) A new role for histone demethylases in the maintenance of plant genome integrity. eLife, 9.

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