Transcriptome and metabolome analysis revealed that phenylpropanoid and flavonoid biosynthesis respond to drought in tiger nut

苯丙素 代谢组 转录组 生物 耐旱性 代谢组学 植物 苗木 类黄酮生物合成 植物生理学 小桶 园艺 生物化学 生物合成 基因 基因表达 生物信息学
作者
Qi Zhang,Yan Cheng,Yuling Gao,Runqing Liu,Haoxin Li,Jinqi Yu,Jingwei Guo,Meiqing Li,Caihua Li,Yuhuan Li,Hongda Wang,Qingqing Xu,Jiaxi Liu,Xuewei Sun,Zhongsheng Mu,Jidao Du
出处
期刊:Physiologia Plantarum [Wiley]
卷期号:177 (2): e70191-e70191
标识
DOI:10.1111/ppl.70191
摘要

Tiger nuts (Cyperus esculentus) have emerged as a novel oil crop, being utilized as raw materials for obtaining industrial ink. Drought is a serious stress that significantly affects the entire plant and reduces its yield. The seedling stage is crucial as it determines the future growth and yield. Consequently, it is essential to enhance the ability of tiger nuts to mitigate drought at the seedling stage. A comprehensive analysis was conducted on roots and leaves, including their phenotypes, physiological indicators, transcriptomes, and metabolomes. The results revealed that leaves and roots were affected by drought stress, as evidenced by phenotypic data such as leaf area and physiological indicators, including changes in peroxidase and catalase activity, malondialdehyde content, electrolyte leakage, and superoxide anion levels. Drought imposed greater effects on leaves. Phenylpropanoid and flavonoid biosynthesis were identified as candidate pathways using transcriptome and metabolome analysis, Real-Time Quantitative PCR (RT-qPCR), and physiological verifications. However, the response modes of the root and leaf parts differed based on the enriched pathways analysis, indicating that the changes in the content of some metabolites were contrasting between the roots and leaves. The study revealed the molecular mechanisms under drought, particularly the synergistic responses in leaves and roots, providing insights and a theoretical basis for enhancing the drought tolerance of tiger nuts.
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