山茶黄酮c -糖苷生物合成中一种黄酮2-羟化酶的鉴定

IF 6.2 1区 农林科学 Q1 AGRICULTURE, MULTIDISCIPLINARY
Yihong Hou, He Zhou, Chunhui Wang, Chengyang Xie, Tian Tian, Yingying Li, Wenzhao Wang, Youben Yu and Tianshan Zhou*, 
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引用次数: 0

摘要

茶叶中含有多种黄酮c -糖苷,是区分茶叶品种和茶类的重要化合物。然而,茶树黄酮c -糖苷的生物合成途径尚不清楚,所涉及的关键酶尚未表征。本研究建立了测定9种黄酮c -糖苷的液相色谱-质谱联用方法,并对9种黄酮c -糖苷在茶树中的积累规律进行了初步研究。然后,鉴定了黄酮c -糖苷生物合成的进入酶CsF2H,该酶具有4个细胞色素p450特异性保守基序,并靶向内质网。相关分析表明,CsF2H的表达量与9种黄酮c -苷的含量均呈正相关。重组CsF2H可将黄酮(柚皮素)转化为相应的2-羟基黄酮(2-羟基柚皮素),而不转化为黄酮(芹菜素)。CsF2H和CsCGT1在酵母中的异种共表达表明,在CsF2H和CsCGT1的催化控制下,底物柚皮素在脱水后可酶促转化为黄酮单c -糖苷牡荆素和异牡荆素。基因特异性反义寡核苷酸分析表明,抑制CsF2H可显著降低9种黄酮c -糖苷的水平。综上所述,CsF2H是茶树中第一个通过2-羟基黄酮生物合成途径产生黄酮c -糖苷的关键酶。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Identification of a Flavanone 2-Hydroxylase Involved in Flavone C-Glycoside Biosynthesis from Camellia sinensis

Identification of a Flavanone 2-Hydroxylase Involved in Flavone C-Glycoside Biosynthesis from Camellia sinensis

Tea contains a variety of flavone C-glycosides, which are important compounds that distinguish tea cultivars and tea categories. However, the biosynthesis pathway of flavone C-glycosides in tea plant remains unknown, and the key enzymes involved have not been characterized. In this study, a liquid chromatography–mass spectrometry method to determine 9 flavone C-glycosides was developed, and the accumulation patterns of 9 flavone C-glycosides in tea plants were examined first. Then, an entry enzyme CsF2H for flavone C-glycoside biosynthesis was identified, which had four cytochrome P450-specific conserved motifs and was targeted to the endoplasmic reticulum. Correlation analysis indicated that the expression level of CsF2H was positively correlated with all contents of 9 flavone C-glycosides. The recombinant CsF2H could convert flavanone (naringenin) into the corresponding 2-hydroxyflavonone (2-hydroxynaringenin), rather than into flavone (apigenin). Heterologous coexpression of CsF2H and CsCGT1 in yeast revealed that the substrate naringenin could be enzymatically converted to flavone mono-C-glycosides vitexin and isovitexin under the catalytic control of CsF2H and CsCGT1 following dehydration. Gene-specific antisense oligonucleotide analysis suggested that suppressing CsF2H significantly reduced the levels of 9 flavone C-glycosides. Together, CsF2H is the first key enzyme that generates flavone C-glycosides through the 2-hydroxyflavanone biosynthesis pathway in tea plants.

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来源期刊
Journal of Agricultural and Food Chemistry
Journal of Agricultural and Food Chemistry 农林科学-农业综合
CiteScore
9.90
自引率
8.20%
发文量
1375
审稿时长
2.3 months
期刊介绍: The Journal of Agricultural and Food Chemistry publishes high-quality, cutting edge original research representing complete studies and research advances dealing with the chemistry and biochemistry of agriculture and food. The Journal also encourages papers with chemistry and/or biochemistry as a major component combined with biological/sensory/nutritional/toxicological evaluation related to agriculture and/or food.
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