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DNA methylation carried out by different methyltransferase classes is a relevant epigenetic modification of DNA which plays a relevant role in the development of eukaryotic organisms. Accordingly, in Arabidopsis thaliana loss of DNA methylation due to combined mutations in genes encoding for DNA methyltransferases causes several developmental abnormalities. The present study describes novel growth disorders in the drm1 drm2 cmt3 triple mutant of Arabidopsis thaliana, defective both in maintenance and de novo DNA methylation, and highlights the correlation between DNA methylation and the auxin hormone pathway. By using an auxin responsive reporter gene, we discovered that auxin accumulation and distribution were affected in the mutant compared to the wild type, from embryo to adult plant stage. In addition, we demonstrated that the defective methylation status also affected the expression of genes that regulate auxin hormone pathways from synthesis to transport and signalling and a direct relationship between differentially expressed auxin-related genes and altered auxin accumulation and distribution in embryo, leaf and root was observed. Finally, we provided evidence of the direct and organ-specific modulation of auxin-related genes through the DNA methylation process.

More information Original publication

DOI

10.1016/j.plantsci.2018.12.029

Type

Journal article

Publication Date

2019-03-01T00:00:00+00:00

Volume

280

Pages

383 - 396

Total pages

13

Keywords

Arabidopsis thaliana, Auxin pathway, DNA methyltransferases, Epigenetics, Arabidopsis, Arabidopsis Proteins, DNA Methylation, DNA-Cytosine Methylases, Epigenesis, Genetic, Genes, Reporter, Indoleacetic Acids, Methyltransferases, Mutation, Organ Specificity, Phenotype, Plant Growth Regulators, Signal Transduction