Molecular regulatory mechanisms of Populus deltoides under combined high temperature and short-photoperiod stress associated with DNA methylation.

IF 4.8
Forestry research Pub Date : 2026-07-31 eCollection Date: 2026-01-01 DOI:10.48130/forres-0026-0025
Zheng-Sai Yuan, Wei-Xi Zhang, Xiao-Hua Su, Zheng-Hong Li, Jing Zhang, Lu-Lan Miao, Hang Wei, Zi-Hao Wang, Yan-Guang Chu, Chang-Jun Ding
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Abstract

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.

高温短光周期联合胁迫下三角杨dna甲基化相关的分子调控机制
deltoides是温带地区工业用材和生态建筑的重要树种,日益频繁和持续的热浪对其生存构成了严重挑战。然而,DNA甲基化调节环境反应的表观遗传机制仍然知之甚少。本研究对生长在温带和热带地区的5种三角藻基因型进行了亚硫酸盐全基因组测序和rna测序。结果表明,CG/CHG甲基化稳定性与环境敏感性密切相关。显著的CG/CHG甲基化变异可能发生在具有较大来源-环境差异的敏感基因型中,从而通过抑制参与生命过程的关键基因的表达来威胁P. deltoides的生存。CHH甲基化变异可能是环境适应的潜在表观遗传调控因子。启动子chh -超甲基化似乎代表了P. deltoides在高温和短光周期(HS)胁迫下的一般反应,可能调节56个基因的表达,激活Ca2+内流和热休克蛋白,抑制生长素、细胞分裂素和细胞周期途径,从而启动应激保护反应。PdeCNGC13、PdeARF6、PdeLOG3和PdeHSP15.7被鉴定为与DNA甲基化相关的HS适应潜在调控基因。PdeLOG3的机制可能涉及hs诱导的PdeLOG3启动子的chh超甲基化,这可能与抑制表达、降低二氢玉米素水平和生长有关。这种作用被5-氮杂胞苷部分逆转,伴随细胞分裂素合成增加,抗氧化能力增强,并与HS应激减轻相一致。我们的工作初步揭示了杨树DNA甲基化相关环境适应的分子机制,为培育气候适应型树木提供了潜在的遗传靶点。
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