OsCYP714D1 improves plant growth and salt tolerance through regulating gibberellin and ion homeostasis in transgenic poplar

生物 赤霉素 开枪 转基因作物 非生物胁迫 转基因 赤霉素 植物激素 细胞生物学 拟南芥 基因 植物 突变体 生物化学 发芽
作者
Hongsheng Gao,Huiqing Huang,Kaifeng Lu,Cuiting Wang,Xiaohua Liu,Zhizhong Song,Houjun Zhou,Lei Yang,Bei Li,Chunyan Yu,Hongxia Zhang
出处
期刊:Plant Physiology and Biochemistry [Elsevier BV]
卷期号:168: 447-456 被引量:6
标识
DOI:10.1016/j.plaphy.2021.10.023
摘要

Cytochrome P450 monooxygenases (CYP450s) play crucial roles in the regulation of plant growth and response to abiotic stress. However, their functions in woody trees are still largely unknown. Previously, we reported that expression of the rice cytochrome P450 monooxygenase gene OsCYP714D1 increased gibberellic acid (GA) accumulation and shoot growth in transgenic poplar. In this work, we demonstrate that expression of OsCYP714D1 improved the salt tolerance of transgenic poplar plants. Compared to wild type, plant height and K+ content were significantly higher, whereas plant growth inhibition and Na+ content were significantly lower, in transgenic plants grown under high salt stress condition. Transcriptomic analyses revealed that OsCYP714D1 expression up-regulated the expressions of GA biosynthesis, signaling and stress responsive genes in transgenic plants under both normal and high salt stress conditions. Further gene ontology (GO) analyses indicated that genes involved in plant hormone and ion metabolic activities were significantly enriched in transgenic plants. Our findings imply that OsCYP714D1 participated in the regulation of both shoot growth and salt resistance through regulating gibberellin and ion homeostasis in transgenic poplar, and it can be used as a candidate gene for the engineering of new tree varieties with improved biomass production and salt stress resistance.

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