代谢组学
类黄酮生物合成
MYB公司
转录组
特里金
小桶
生物化学
类黄酮
生物
代谢途径
柚皮素
代谢组
黄酮类
查尔酮合酶
化学
生物合成
转录因子
新陈代谢
基因表达
酶
植物
基因
生物信息学
抗氧化剂
作者
Y. R. Wang,Jiaxin Zhang,Ping Wang,Yongkang Li,Yihan Wang,Yan Yan,Junwen Chi,Jian‐Kang Chen,Junmei Lian,Xiangmin Piao,Xiujuan Lei,Ying Xiao,Jeremy D. Murray,Michael K. Deyholos,Ying‐Ping Wang,Peng Di,Jian Zhang
摘要
Panax quinquefolius is a globally valued medicinal plant rich in bioactive flavonoids, yet the molecular mechanisms underlying their biosynthesis remain poorly understood. In this study, we integrated transcriptomic and metabolomic analyses to investigate tissue-specific flavonoid accumulation and regulatory networks in roots, leaves, and flowers. Metabolomic profiling identified 141 flavonoid metabolites, with flavones, flavonols, and C-glycosylflavones predominantly enriched in aerial tissues (leaves and flowers), while specific glycosides like tricin 7-O-acetylglucoside showed root-specific accumulation. Transcriptome sequencing revealed 15,551–18,946 DEGs across tissues, and the reliability of the transcriptomic data was validated by qRT-PCR. KEGG and GO annotation analyses suggested that these DEGs may play a crucial role in the biosynthesis and metabolism of secondary metabolites. From the DEGs, UGTs and MYB TFs were identified and subjected to correlation analysis. Functional validation through in vitro enzymatic assays confirmed that PqUGT71A1 catalyzes apigenin and naringenin glycosylation at the 7-OH position. Additionally, subcellular localization and yeast one-hybrid assays demonstrated that PqMYB7 and PqMYB13 interact with the PqUGT71A1 promoter and activate its expression.. This study unveils the spatial dynamics of flavonoid metabolism in P. quinquefolius and establishes a MYB-UGT regulatory axis, providing critical insights for metabolic engineering and bioactive compound optimization in medicinal plants.
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