Multi‐omics identification of a key glycosyl hydrolase gene FtGH1 involved in rutin hydrolysis in Tartary buckwheat (Fagopyrum tataricum)

芦丁 苦荞 生物 槲皮素 基因 种质资源 生物化学 类黄酮 糖基 植物 抗氧化剂
作者
Dili Lai,Kaixuan Zhang,Yuqi He,Yu Fan,Wei Li,Yaliang Shi,Yuanfen Gao,Xu Huang,Jiayue He,Hui Zhao,Xiang Lü,Yutao Xiao,Jianping Cheng,Jingjun Ruan,Milen I. Georgiev,Alisdair R. Fernie,Meiliang Zhou
出处
期刊:Plant Biotechnology Journal [Wiley]
被引量:1
标识
DOI:10.1111/pbi.14259
摘要

Summary Rutin, a flavonoid rich in buckwheat, is important for human health and plant resistance to external stresses. The hydrolysis of rutin to quercetin underlies the bitter taste of Tartary buckwheat. In order to identify rutin hydrolysis genes, a 200 genotypes mini‐core Tartary buckwheat germplasm resource was re‐sequenced with 30‐fold coverage depth. By combining the content of the intermediate metabolites of rutin metabolism with genome resequencing data, metabolite genome‐wide association analyses (GWAS) eventually identified a glycosyl hydrolase gene FtGH1 , which could hydrolyse rutin to quercetin. This function was validated both in Tartary buckwheat overexpression hairy roots and in vitro enzyme activity assays. Mutation of the two key active sites, which were determined by molecular docking and experimentally verified via overexpression in hairy roots and transient expression in tobacco leaves, exhibited abnormal subcellular localization, suggesting functional changes. Sequence analysis revealed that mutation of the FtGH1 promoter in accessions of two haplotypes might be necessary for enzymatic activity. Co‐expression analysis and GWAS revealed that FtbHLH165 not only repressed FtGH1 expression, but also increased seed length. This work reveals a potential mechanism behind rutin metabolism, which should provide both theoretical support in the study of flavonoid metabolism and in the molecular breeding of Tartary buckwheat.
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