生物
拟南芥
转录组
黄酮醇
突变体
类黄酮
鼠李糖
糖基化
山奈酚
基因
生物化学
拟南芥
代谢组
槲皮素
基因表达谱
代谢途径
代谢物
遗传学
基因表达
抗氧化剂
半乳糖
作者
Keiko Yonekura‐Sakakibara,Takayuki Tohge,Fumio Matsuda,Ryo Nakabayashi,Hiromitsu Takayama,Rie Niida,Akiko Watanabe‐Takahashi,Eri Inoue,Kazuki Saito
出处
期刊:The Plant Cell
[Oxford University Press]
日期:2008-08-01
卷期号:20 (8): 2160-2176
被引量:378
标识
DOI:10.1105/tpc.108.058040
摘要
Abstract To complete the metabolic map for an entire class of compounds, it is essential to identify gene–metabolite correlations of a metabolic pathway. We used liquid chromatography–mass spectrometry (LC-MS) to identify the flavonoids produced by Arabidopsis thaliana wild-type and flavonoid biosynthetic mutant lines. The structures of 15 newly identified and eight known flavonols were deduced by LC-MS profiling of these mutants. Candidate genes presumably involved in the flavonoid pathway were delimited by transcriptome coexpression network analysis using public databases, leading to the detailed analysis of two flavonoid pathway genes, UGT78D3 (At5g17030) and RHM1 (At1g78570). The levels of flavonol 3-O-arabinosides were reduced in ugt78d3 knockdown mutants, suggesting that UGT78D3 is a flavonol arabinosyltransferase. Recombinant UGT78D3 protein could convert quercetin to quercetin 3-O-arabinoside. The strict substrate specificity of UGT78D3 for flavonol aglycones and UDP-arabinose indicate that UGT78D3 is a flavonol arabinosyltransferase. A comparison of flavonol profile in RHM knockout mutants indicated that RHM1 plays a major role in supplying UDP-rhamnose for flavonol modification. The rate of flavonol 3-O-glycosylation is more affected than those of 7-O-glycosylation by the supply of UDP-rhamnose. The precise identification of flavonoids in conjunction with transcriptomics thus led to the identification of a gene function and a more complete understanding of a plant metabolic network.
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