首页> 外文期刊>Gene: An International Journal Focusing on Gene Cloning and Gene Structure and Function >Functional analysis of flavonoid 3 '-hydroxylase and flavonoid 3 ',5 '-hydroxylases from tea plant (Camellia sinensis), involved in the B-ring hydroxylation of flavonoids
【24h】

Functional analysis of flavonoid 3 '-hydroxylase and flavonoid 3 ',5 '-hydroxylases from tea plant (Camellia sinensis), involved in the B-ring hydroxylation of flavonoids

机译:黄酮类化合物3' - 羟基化酶和黄酮类化合物3',5'-羟基苯甲酸盐酶的功能分析(Camellia Sinensis),参与黄酮类化合物的B环羟基化

获取原文
获取原文并翻译 | 示例
           

摘要

Flavonoids are major polyphenol compounds in plant secondary metabolism. The hydroxylation pattern of the B-ring of flavonoids is determined by the flavonoid 3'-hydroxylase (F3'H) and flavonoid 3',5'-hydroxylase (F3'5'H). In this paper, one CsF3'H and two CsF3'5'Hs (CsF3'5'Ha and CsF3'5'Hb) were isolated. The phylogenetic tree results showed that F3'H and F3'5'Hs belong to the CYP75B and CYP75A, respectively. The Expression pattern analysis showed that the expression of CsF3'5'Ha and CsF3'5'Hb in the bud and 1st leaf were higher than other tissues. However, the CsF3'H had the highest expression in the 4th and mature leaf. The correlation analysis showed that the expression of CsF3'5'Hs is positively associated with the concentration of B-trihydroxylated catechins, and the expression of CsF3'H is positively associated with the Q contentration. Heterologous expression of these genes in yeast showed that CsF3'H and CsF3'5'Ha can catalyze flavanones, fiavonols and flavanonols to the corresponding 3', 4' or 3', 4', 5'-hydroxylated compounds, for which the optimum substrate is naringenin. The enzyme of CsF3'5'Hb can only catalyze fiavonols (including K and Q) and flavanonols (DHK and DHQ), of which the highest activities in catalyzing are DHK. Interestingly, The experiment of site-directed mutagenesis suggested that two novel sites near the C-terminal were discovered impacting on the activity of the CsF3'5'H. These results provide a significantly molecular basis on the accumulation B-ring hydroxylation of flavonoids in tea plant.
机译:黄酮类化合物是植物次生代谢中的主要多酚化合物。黄酮类化合物的羟基化图案由黄酮3'-羟化酶(F3'H)和黄酮3',5'-羟化酶(F3'5'H)测定。在本文中,分离了一个CSF3'H和两个CSF3'5'HS(CSF3'5'5'HS(CSF3'5'A和CSF3'5'HB)。系统发育树结果表明,F3'H和F3'5'H分别属于CYP75B和CYP75A。表达模式分析表明,芽和第1叶中CSF3'5'HA和CSF3'5'HB的表达高于其他组织。然而,CSF3'H在第4和成熟叶中具有最高的表达。相关分析表明,CSF3'5'Hs的表达与B-三羟基化的儿茶素的浓度正相关,CSF3'H的表达与Q谱呈正相关。这些基因在酵母中的异源表达显示CSF3'H和CSF3'5'HA可以将黄烷酮,FIAVONOL和黄烷醇催化至相应的3',4'或3',4',5'-羟基化化合物,其最佳底物是鼻腔。 CSF3'5'HB的酶只能催化FIAVONOLS(包括K和Q)和黄兰酮(DHK和DHQ),其中催化的最高活性是DHK。有趣的是,定向定向诱变的实验表明,发现C末端附近的两个新的位点对CSF3'5'H的活性产生影响。这些结果对茶叶中黄酮类化合物的积累B环羟基化提供了显着的分子基础。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号