It is suggested that Al stress triggers genotype- and sequence-context-specific epigenomic reprogramming in rice, and that tolerance is associated with a targeted methylation response rather than a diffuse one.
Abstract
Introduction Aluminum (Al) toxicity in acidic soils is a major constraint to rice production worldwide. However, the epigenetic mechanisms underlying genotypic differences in Al tolerance remain largely unexplored. Methods We integrated whole-genome bisulfite sequencing (WGBS) and RNA sequencing (RNA-seq) to characterize DNA methylation dynamics and their relationship with gene expression in two contrasting Oryza sativa genotypes, Al-tolerant Azucena and Al-susceptible BGI, exposed to prolonged Al stress (10 days). Results Genome-wide analysis revealed pronounced context-specific methylation changes that differed markedly between genotypes. CHG methylation was broadly reduced under stress in both genotypes, with a stronger response in BGI, whereas CHH methylation showed a genome-wide increase in BGI but only modest changes in Azucena, indicating more extensive epigenomic perturbation in the susceptible background. At the local level, differentially methylated regions (DMRs) were predominantly hypomethylated across all cytosine contexts and, particularly within the CHG and CHH contexts, were significantly enriched within transposable elements and upstream regulatory regions relative to genomic background, suggesting that stress-induced relaxation of TE silencing and regulatory reprogramming of promoter regions are conserved features of the Al epigenetic response. Integration of DMR and differential expression data identified 71 and 93 genes with both methylation and transcriptional changes in Azucena and BGI, respectively, with only three genes shared between genotypes, all showing opposite transcriptional responses, underscoring the near-complete genotype specificity of the methylation–expression interface. In Azucena, the Al-tolerant genotype, methylation and expression changes were targeted in genes directly linked to Al exclusion, including organic acid and MATE transporters, whereas BGI showed a broader and less specific epigenomic response. Discussion These results suggest that Al stress triggers genotype- and sequence-context-specific epigenomic reprogramming in rice, and that tolerance is associated with a targeted methylation response rather than a diffuse one. This positions DNA methylation as an additional regulatory layer shaping Al tolerance, and pinpoints a short list of candidate genes as priority targets for epigenome-informed breeding strategies in Al-tolerant rice.
This study provides a comprehensive integrative analysis of DNA methylation and transcriptome reprogramming in ‘Shine Muscat’ grapevine under salt stress, revealing potential epigenetic mechanisms involved in transcriptional regulation and salt adaptation.
Ao Li, Ke Li, Fengxia Wang et al.· Agronomy· 0 citations
These findings support a model in which repeated drought consistently recruits CHH methylation to reproducible gene-proximal TEs, where it is associated with maintenance of local TE repression despite continued activation of neighboring stress-responsive genes.
It is found that heat-induced CHH methylation targets specific genomic loci in a developmental stage-specific manner, with a differentially methylated window located within 6 kb of AT5G44410, an F-box protein-encoding gene.
This study focused on addressing molecular mechanisms of maize response to HAT-NSD by multi-level approaches, and provided new insights into mechanisms for maize responses to HAT-NSD through WGDM.
Y. Pei, Ya-Xing Liu, Jia-Ming Song et al.· Plant, Cell and Environment· 1 citation
Populus deltoides is a key species for industrial timber and ecological construction in temperate regions, where increasingly frequent and persistent heat waves pose serious challenges to its survival. However, the epigenetic mechanisms by which DNA methylation regulates environmental responses remain poorly understood. Here, whole-genome bisulfite sequencing and RNA-seq were performed on five P. deltoides genotypes grown in temperate and tropical regions. Results revealed that CG/CHG methylation stability is closely correlated with environmental sensitivity. Significant CG/CHG methylation variations may occur specifically in sensitive genotypes with large provenance-environment differences, thereby threatening the survival of P. deltoides by inhibiting the expression of key genes involved in life processes. CHH methylation variation may act as a potential epigenetic regulator of environmental adaptation. Promoter CHH-hypermethylation appears to represent a general response of P. deltoides under high-temperature and short-photoperiod (HS) stress, potentially regulating the expression of 56 genes to activate Ca2+ influx and heat shock proteins, repressing auxin, cytokinin, and cell cycle pathways, thereby initiating stress-protective responses. PdeCNGC13, PdeARF6, PdeLOG3, and PdeHSP15.7 were identified as potential regulatory genes of HS adaptation that are associated with DNA methylation. The mechanism of PdeLOG3 may involve HS-induced CHH-hypermethylation at its PdeLOG3 promoter, which may be associated with suppressed expression, reduced dihydrozeatin levels, and growth. This effect was partially reversed by 5-Azacytidine administration, accompanying increased cytokinin synthesis, enhanced antioxidant capacity, and coinciding with alleviation of HS stress. Our work preliminarily reveals the molecular mechanisms underlying DNA methylation-associated environmental adaptation in poplar, providing potential genetic targets for breeding climate-resilient trees.
Zhengsai Yuan, Weixi Zhang, Xiaohua Su et al.· Forestry Research· 0 citations