4.7 Article

AtSAMS regulates floral organ development by DNA methylation and ethylene signaling pathway

Journal

PLANT SCIENCE
Volume 334, Issue -, Pages -

Publisher

ELSEVIER IRELAND LTD
DOI: 10.1016/j.plantsci.2023.111767

Keywords

DNA methylation; Floral organ abnormalities; ABCE genes; Ethylene; Arabidopsis thaliana

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In this study, it was found that S-adenosylmethionine synthase regulates plant floral organ development through DNA demethylation and ethylene signaling pathway. DNA demethylation enhances ethylene biosynthesis, leading to abnormal floral organ development. The crosstalk between SAMS-mediated methylation and ethylene signaling may play a crucial role in the process of floral organ development.
S-adenosylmethionine synthase is the key enzyme involved in the biosynthesis of S-adenosylmethionine, which serves as the universal methyl group donor and a common precursor for the biosynthesis of ethylene and polyamines. However, little is known about how SAMS controls plant development. Here, we report that the abnormal floral organ development in the AtSAMS-overexpressing plants is caused by DNA demethylation and ethylene signaling. The whole-genome DNA methylation level decreased, and ethylene content increased in SAMOE. Wild-type plants treated with DNA methylation inhibitor mimicked the phenotypes and the ethylene levels in SAMOE, suggesting that DNA demethylation enhanced ethylene biosynthesis, which led to abnormal floral organ development. DNA demethylation and elevated ethylene resulted in changes in the expression of ABCE genes, which is essential for floral organ development. Furthermore, the transcript levels of ACE genes were highly correlated to their methylation levels, except for the down-regulation of the B gene, which might have resulted from demethylation-independent ethylene signaling. SAMS-mediated methylation and ethylene signaling might create crosstalk in the process of floral organ development. Together, we provide evidence that AtSAMS regulates floral organ development by DNA methylation and ethylene signaling pathway.

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