The transcription factor PtoMYB142 enhances drought tolerance in Populus tomentosa by regulating gibberellin catabolism

赤霉素 生物 分解代谢 转录因子 抄写(语言学) 基因 植物 细胞生物学 新陈代谢 遗传学 生物化学 哲学 语言学
作者
Qin Song,Lingfei Kong,Jiarui Yang,Minghui Lin,Yuqian Zhang,Xuerui Yang,Xiaojing Wang,Zhengjie Zhao,Meng Zhang,Jiarui Pan,Shunqin Zhu,Bo Jiao,Changzheng Xu,Keming Luo
出处
期刊:Plant Journal [Wiley]
卷期号:118 (1): 42-57 被引量:4
标识
DOI:10.1111/tpj.16588
摘要

SUMMARY Drought stress caused by global warming has resulted in significant tree mortality, driving the evolution of water conservation strategies in trees. Although phytohormones have been implicated in morphological adaptations to water deficits, the molecular mechanisms underlying these processes in woody plants remain unclear. Here, we report that overexpression of PtoMYB142 in Populus tomentosa results in a dwarfism phenotype with reduced leaf cell size, vessel lumen area, and vessel density in the stem xylem, leading to significantly enhanced drought resistance. We found that PtoMYB142 modulates gibberellin catabolism in response to drought stress by binding directly to the promoter of PtoGA2ox4 , a GA 2 ‐oxidase gene induced under drought stress. Conversely, knockout of PtoMYB142 by the CRISPR/Cas9 system reduced drought resistance. Our results show that the reduced leaf size and vessel area, as well as the increased vessel density, improve leaf relative water content and stem water potential under drought stress. Furthermore, exogenous GA 3 application rescued GA‐deficient phenotypes in PtoMYB142 ‐overexpressing plants and reversed their drought resistance. By suppressing the expression of PtoGA2ox4 , the manifestation of GA‐deficient characteristics, as well as the conferred resistance to drought in PtoMYB142 ‐overexpressing poplars, was impeded. Our study provides insights into the molecular mechanisms underlying tree drought resistance, potentially offering novel transgenic strategies to enhance tree resistance to drought.
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