ArticleGenome biology2025
DNA methylation dynamics play crucial roles in shaping the distinct transcriptomic profiles for different root-type initiation in rice.
Article in Genome biology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed.
- RNA modifications and epigenetic regulation in plants.aBIOTECH · 2026Review
- Structural Variation and 3D Genome-Driven DNA/RNA Methylation Divergence Contributing to Cotton Fiber Domestication.Advanced science (Weinheim, Baden-Wurttemberg, Germany) · 2026Article
- A comparative study of phyllostachys edulis and its dwarf variant phyllostachys edulis 'Tubaeformis' at the anatomical, transcriptomic, and DNA methylation levels.Frontiers in plant science · 2026Article
- Epigenetic maps of pearl millet reveal a prominent role for CHH methylation in regulating tissue-specific gene expression.aBIOTECH · 2025Article
- DNA Methylation in Rice: Mechanisms, Regulatory Roles, and Beyond.International journal of molecular sciences · 2025Review
- DNA methylation dynamics play crucial roles in shaping the distinct transcriptomic profiles for different root-type initiation in rice.Genome biology · 2025Article
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5 authors.
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Abstract
backgroundMonocots possess a fibrous root system comprising an embryonic root, crown roots, and lateral roots. The distinct cellular origins highlight the diversity of the initiation mechanism. To date, the distinct initiation mechanisms have been poorly studied. In this study, we conduct a comprehensive transcriptome and DNA methylome assay of these root types during their initiation.
resultsOur findings indicate significant divergence in transcriptome regulation trajectories with apparent transcriptional activation in post-embryonic root initials (crown root and lateral root) contrasted by suppression in embryonic root generation. Additionally, CHH methylation is dynamically and differentially regulated across the initiation stages of the various root types, and is significantly associated with the short transposon element within the promoter regions of functional genes, which plays crucial roles in determining the genes' spatiotemporal transcription. Moreover, our work reveals that the activation of DNA glycosylase 702 (DNG702) and repression of Domains Rearranged Methyltransferase 2 (DRM2) play important roles in the erasure of CHH methylation and activation of functional genes during the processes, such as a novel identified key regulatory bZip65, thus directly impacting the initiation of post-embryonic roots in rice.
conclusionsOur extensive analysis delineates the landscapes of spatiotemporal transcriptomes and DNA methylomes during the initiation of the three root types in rice, shedding light on the pivotal role of CHH methylation in the spatiotemporal regulation of various key genes, ensuring the successful initiation of distinct root types in rice.
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