DNA methylation impacts soybean early development by modulating hormones and metabolic pathways

生物 DNA甲基化 表观遗传学 脱甲基酶 非生物胁迫 苗木 甲基化 生物化学 基因表达 细胞生物学 植物 基因
作者
Fernanda Silva Coelho,Sara Sangi Miranda,Juliana Lopes de Moraes,Adriana Silva Hemerly,Helkin Giovani Forero Ballesteros,Claudete Santa‐Catarina,Renan Carrari Dos Santos,Felipe Astolpho Almeida,Vanildo Silveira,Amanda Ferreira Macedo,Eny Iochevet Segal Floh,Edinaldo de Oliveira Alves Sena,Jurandi Gonçalves de Oliveira,Lyderson Fácio Viccini,Elyabe Monteiro de Matos,Clícia Grativol
出处
期刊:Physiologia Plantarum [Wiley]
卷期号:176 (4) 被引量:1
标识
DOI:10.1111/ppl.14492
摘要

Genomic DNA methylation patterns play a crucial role in the developmental processes of plants and mammals. In this study, we aimed to investigate the significant effects of epigenetic mechanisms on the development of soybean seedlings and metabolic pathways. Our analyses show that 5-azaC-treatment affects radicle development from two Days After Imbibition (DAI), as well as both shoot and root development. We examined the expression levels of key genes related to DNA methylation and demethylation pathways, such as DRM2, which encodes RNA-directed DNA Methylation (RdDM) pathway, SAM synthase, responsible for methyl group donation, and ROS1, a DNA demethylase. In treated seedling roots, we observed an increase in DRM2 expression and a decrease in ROS1 expression. Additionally, 5-azaC treatment altered protein accumulation, indicating epigenetic control over stress response while inhibiting nitrogen assimilation, urea cycle, and glycolysis-related proteins. Furthermore, it influenced the levels of various phytohormones and metabolites crucial for seedling growth, such as ABA, IAA, ethylene, polyamines (PUT and Cad), and free amino acids, suggesting that epigenetic changes may shape soybean responses to pathogens, abiotic stress, and nutrient absorption. Our results assist in understanding how hypomethylation shapes soybean responses to pathogens, abiotic stress, and nutrient absorption crucial for seedling growth, suggesting that the plant's assimilation of carbon and nitrogen, along with hormone pathways, may be influenced by epigenetic changes.
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