表观遗传学
DNA甲基化
甲基转移酶
甲基化
转录组
去甲基化
转座因子
亚硫酸氢盐测序
DNA
生物
细胞生物学
亚硫酸氢盐
化学
基因表达调控
DNA损伤
光合作用
差异甲基化区
氧化应激
表观遗传学
遗传学
拟南芥
小RNA
基因
5-羟甲基胞嘧啶
CpG站点
战斗或逃跑反应
生物化学
基因沉默
DNA甲基转移酶
DNA去甲基化
发起人
适应性反应
光合效率
调解人
DNA测序
作者
Xiaoyun Liu,Ling He,Hanbing Hu,Shanshan Wang,Yuling Zheng,Suming Chen,Xigang Dai,Jun Zou,Changli Zeng,Tingdong Fu,Jinxiong Shen,Heping Wan
标识
DOI:10.1021/acs.jafc.5c08820
摘要
Soil salinization is a threat to global agriculture. This study used whole-genome bisulfite sequencing and transcriptomics to explore epigenetic regulation in salt-tolerant Brassica napus (cv. Huayouza 62) under NaCl (salt), Na 2 CO 3 (alkali), and combined salt-alkali stresses. All stresses induced genome-wide DNA hypermethylation (combined > alkali > salt). The Cn subgenome had significant methylation changes (most at CHH, then at CHG), with more differentially methylated regions in transposable elements than protein-coding genes. Hypermethylation, driven by DNA methyltransferases (e.g., DRM2), inhibited growth by repressing photosynthetic genes ( RBCS-1A, RBCS-1B ). B. napus adapted via targeted demethylation activated stress resistance (ROS scavenging under salt, redox buffering under alkali, and protein homeostasis under combined stress). 5-Azacytidine validation confirmed that methylation balances photosynthesis and stress response, clarifying the epigenetic network and providing strategies for crop stress resistance improvement.
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