根际
丁酸钠
乙酰化
耐旱性
组蛋白
化学
硫化氢
表观遗传学
组蛋白脱乙酰基酶
水稻
稻属
生物化学
生物
基因表达
植物
突变体
机制(生物学)
植物生理学
过氧化物酶
丁酸盐
甜菜碱
组蛋白脱乙酰基酶2
渗透调节剂
四氢嘧啶
基因
还原酶
细胞生物学
发起人
非生物胁迫
硫黄
细菌
作者
Xu Chen,Jialin Ge,Xingjing Cai,Lei Jin,Huanhe Wei,Xinru Zhao,Haidong Yang,Wen Jiang,Zhukuan Cheng,Chao Xue,Xi Cao,Z. Wang,Qigen Dai,Yong Zhou,Zhiyun Gong
摘要
ABSTRACT Hydrogen sulfide (H 2 S), a well‐established gaseous signaling molecule, can effectively enhance plant tolerance to various environmental stresses. However, there is still a lack of suitable methods to release H 2 S in agricultural production, and the mechanism by which H 2 S improves stress resistance remains poorly understood. Here, we show the novel role of sodium butyrate (NaB) in producing H 2 S consistently in rice rhizosphere soil and the epigenetic mechanism of H 2 S to enhance rice drought tolerance. We found that NaB increased sulfate‐reducing bacteria (SRB) abundance in the rhizosphere soil, resulting in higher expression of sulfite reductase (SiR), and consequently increased H 2 S production. Mechanistic investigation showed that H 2 S enhanced the level of H4K5ac in promoter regions of drought‐tolerant genes, facilitating their expression by repressing the histone deacetylase (HDAC) gene OsHDA710 . Loss‐of‐function mutants of OsHDA710 exhibited enhanced drought tolerance compared to wild‐type (WT) plants, while OsHDA710 overexpression plants showed drought hypersensitivity. Moreover, we demonstrated that OsHDA710 could bind directly to promoters of drought‐tolerance genes by recognizing the TGACC motif. Our findings illustrate an efficient way to produce H 2 S and a novel mechanism for H 2 S in improving the drought resistance of plants.
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