Yang Songtao, Qiao Shuai, Yang Yan, Wang Fang, Song Wei, Tan Wenfang, Li Yongping, Zhu Youlin
College of Life Science, Nanchang University, Nanchang 330031, China.
Sichuan Germplasm Resources Center, Crop Research Institute, Sichuan Academy of Agricultural Sciences, Chengdu 610066, China.
Plants (Basel). 2025 Jun 5;14(11):1735. doi: 10.3390/plants14111735.
DNA methylation is a conserved and vital epigenetic modification that plays essential roles in plant growth, development, and responses to environmental stress. Cytosine-5 DNA methyltransferases (C5-MTases) and DNA demethylases (dMTases) are key regulators of DNA methylation dynamics. However, a comprehensive characterization of these gene families in sweet potato has remained elusive. In this study, we systematically identified and analyzed eight C5-MTase and five dMTase genes in the genomes of diploid (, 2n = 2x = 30) and autohexaploid (, 2n = 6x = 90) sweet potato. Phylogenetic, structural, and synteny analyses revealed a high degree of conservation among these genes, suggesting their essential roles during evolution. Promoter analysis uncovered multiple cis-acting elements, particularly those responsive to light and hormones. In addition, we examined the expression profiling of IbC5-MTases and IbdMTases genes during storage root development, revealing that several were highly expressed during the early and rapid expansion stages. These findings suggest that C5-MTases and dMTases may contribute to the regulation of storage root formation in sweet potato through epigenetic mechanisms, offering valuable insights for future functional studies and epigenetic breeding efforts.
DNA甲基化是一种保守且至关重要的表观遗传修饰,在植物生长、发育及对环境胁迫的响应中发挥着重要作用。胞嘧啶-5 DNA甲基转移酶(C5-MTases)和DNA去甲基化酶(dMTases)是DNA甲基化动态变化的关键调节因子。然而,甘薯中这些基因家族的全面特征仍不清楚。在本研究中,我们系统地鉴定并分析了二倍体(2n = 2x = 30)和同源六倍体(2n = 6x = 90)甘薯基因组中的8个C5-MTase基因和5个dMTase基因。系统发育、结构和共线性分析揭示了这些基因之间的高度保守性,表明它们在进化过程中的重要作用。启动子分析发现了多个顺式作用元件,特别是那些对光和激素有响应的元件。此外,我们检测了IbC5-MTases和IbdMTases基因在贮藏根发育过程中的表达谱,发现其中几个在早期和快速膨大阶段高度表达。这些发现表明,C5-MTases和dMTases可能通过表观遗传机制参与甘薯贮藏根形成的调控,为未来的功能研究和表观遗传育种工作提供了有价值的见解。