Cargando…

Two types of O‐methyltransferase are involved in biosynthesis of anticancer methoxylated 4′‐deoxyflavones in Scutellaria baicalensis Georgi

The medicinal plant Scutellaria baicalensis Georgi is rich in specialized 4′‐deoxyflavones, which are reported to have many health‐promoting properties. We assayed Scutellaria flavones with different methoxyl groups on human cancer cell lines and found that polymethoxylated 4′‐deoxyflavones, like sk...

Descripción completa

Detalles Bibliográficos
Autores principales: Cui, Meng‐Ying, Lu, An‐Rui, Li, Jian‐Xu, Liu, Jie, Fang, Yu‐Min, Pei, Tian‐Lin, Zhong, Xin, Wei, Yu‐Kun, Kong, Yu, Qiu, Wen‐Qing, Hu, Yong‐Hong, Yang, Jun, Chen, Xiao‐Ya, Martin, Cathie, Zhao, Qing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8710825/
https://www.ncbi.nlm.nih.gov/pubmed/34490975
http://dx.doi.org/10.1111/pbi.13700
_version_ 1784623246766768128
author Cui, Meng‐Ying
Lu, An‐Rui
Li, Jian‐Xu
Liu, Jie
Fang, Yu‐Min
Pei, Tian‐Lin
Zhong, Xin
Wei, Yu‐Kun
Kong, Yu
Qiu, Wen‐Qing
Hu, Yong‐Hong
Yang, Jun
Chen, Xiao‐Ya
Martin, Cathie
Zhao, Qing
author_facet Cui, Meng‐Ying
Lu, An‐Rui
Li, Jian‐Xu
Liu, Jie
Fang, Yu‐Min
Pei, Tian‐Lin
Zhong, Xin
Wei, Yu‐Kun
Kong, Yu
Qiu, Wen‐Qing
Hu, Yong‐Hong
Yang, Jun
Chen, Xiao‐Ya
Martin, Cathie
Zhao, Qing
author_sort Cui, Meng‐Ying
collection PubMed
description The medicinal plant Scutellaria baicalensis Georgi is rich in specialized 4′‐deoxyflavones, which are reported to have many health‐promoting properties. We assayed Scutellaria flavones with different methoxyl groups on human cancer cell lines and found that polymethoxylated 4′‐deoxyflavones, like skullcapflavone I and tenaxin I have stronger ability to induce apoptosis compared to unmethylated baicalein, showing that methoxylation enhances bioactivity as well as the physical properties of specialized flavones, while having no side‐effects on healthy cells. We investigated the formation of methoxylated flavones and found that two O‐methyltransferase (OMT) families are active in the roots of S. baicalensis. The Type II OMTs, SbPFOMT2 and SbPFOMT5, decorate one of two adjacent hydroxyl groups on flavones and are responsible for methylation on the C6, 8 and 3′‐hydroxyl positions, to form oroxylin A, tenaxin II and chrysoeriol respectively. The Type I OMTs, SbFOMT3, SbFOMT5 and SbFOMT6 account mainly for C7‐methoxylation of flavones, but SbFOMT5 can also methylate baicalein on its C5 and C6‐hydroxyl positions. The dimethoxylated flavone, skullcapflavone I (found naturally in roots of S. baicalensis) can be produced in yeast by co‐expressing SbPFOMT5 plus SbFOMT6 when the appropriately hydroxylated 4′‐deoxyflavone substrates are supplied in the medium. Co‐expression of SbPFOMT5 plus SbFOMT5 in yeast produced tenaxin I, also found in Scutellaria roots. This work showed that both type I and type II OMT enzymes are involved in biosynthesis of methoxylated flavones in S. baicalensis.
format Online
Article
Text
id pubmed-8710825
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-87108252022-01-05 Two types of O‐methyltransferase are involved in biosynthesis of anticancer methoxylated 4′‐deoxyflavones in Scutellaria baicalensis Georgi Cui, Meng‐Ying Lu, An‐Rui Li, Jian‐Xu Liu, Jie Fang, Yu‐Min Pei, Tian‐Lin Zhong, Xin Wei, Yu‐Kun Kong, Yu Qiu, Wen‐Qing Hu, Yong‐Hong Yang, Jun Chen, Xiao‐Ya Martin, Cathie Zhao, Qing Plant Biotechnol J Research Articles The medicinal plant Scutellaria baicalensis Georgi is rich in specialized 4′‐deoxyflavones, which are reported to have many health‐promoting properties. We assayed Scutellaria flavones with different methoxyl groups on human cancer cell lines and found that polymethoxylated 4′‐deoxyflavones, like skullcapflavone I and tenaxin I have stronger ability to induce apoptosis compared to unmethylated baicalein, showing that methoxylation enhances bioactivity as well as the physical properties of specialized flavones, while having no side‐effects on healthy cells. We investigated the formation of methoxylated flavones and found that two O‐methyltransferase (OMT) families are active in the roots of S. baicalensis. The Type II OMTs, SbPFOMT2 and SbPFOMT5, decorate one of two adjacent hydroxyl groups on flavones and are responsible for methylation on the C6, 8 and 3′‐hydroxyl positions, to form oroxylin A, tenaxin II and chrysoeriol respectively. The Type I OMTs, SbFOMT3, SbFOMT5 and SbFOMT6 account mainly for C7‐methoxylation of flavones, but SbFOMT5 can also methylate baicalein on its C5 and C6‐hydroxyl positions. The dimethoxylated flavone, skullcapflavone I (found naturally in roots of S. baicalensis) can be produced in yeast by co‐expressing SbPFOMT5 plus SbFOMT6 when the appropriately hydroxylated 4′‐deoxyflavone substrates are supplied in the medium. Co‐expression of SbPFOMT5 plus SbFOMT5 in yeast produced tenaxin I, also found in Scutellaria roots. This work showed that both type I and type II OMT enzymes are involved in biosynthesis of methoxylated flavones in S. baicalensis. John Wiley and Sons Inc. 2021-09-14 2022-01 /pmc/articles/PMC8710825/ /pubmed/34490975 http://dx.doi.org/10.1111/pbi.13700 Text en © 2021 Shanghai Chenshan Botanical Garden. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research Articles
Cui, Meng‐Ying
Lu, An‐Rui
Li, Jian‐Xu
Liu, Jie
Fang, Yu‐Min
Pei, Tian‐Lin
Zhong, Xin
Wei, Yu‐Kun
Kong, Yu
Qiu, Wen‐Qing
Hu, Yong‐Hong
Yang, Jun
Chen, Xiao‐Ya
Martin, Cathie
Zhao, Qing
Two types of O‐methyltransferase are involved in biosynthesis of anticancer methoxylated 4′‐deoxyflavones in Scutellaria baicalensis Georgi
title Two types of O‐methyltransferase are involved in biosynthesis of anticancer methoxylated 4′‐deoxyflavones in Scutellaria baicalensis Georgi
title_full Two types of O‐methyltransferase are involved in biosynthesis of anticancer methoxylated 4′‐deoxyflavones in Scutellaria baicalensis Georgi
title_fullStr Two types of O‐methyltransferase are involved in biosynthesis of anticancer methoxylated 4′‐deoxyflavones in Scutellaria baicalensis Georgi
title_full_unstemmed Two types of O‐methyltransferase are involved in biosynthesis of anticancer methoxylated 4′‐deoxyflavones in Scutellaria baicalensis Georgi
title_short Two types of O‐methyltransferase are involved in biosynthesis of anticancer methoxylated 4′‐deoxyflavones in Scutellaria baicalensis Georgi
title_sort two types of o‐methyltransferase are involved in biosynthesis of anticancer methoxylated 4′‐deoxyflavones in scutellaria baicalensis georgi
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8710825/
https://www.ncbi.nlm.nih.gov/pubmed/34490975
http://dx.doi.org/10.1111/pbi.13700
work_keys_str_mv AT cuimengying twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT luanrui twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT lijianxu twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT liujie twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT fangyumin twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT peitianlin twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT zhongxin twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT weiyukun twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT kongyu twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT qiuwenqing twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT huyonghong twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT yangjun twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT chenxiaoya twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT martincathie twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi
AT zhaoqing twotypesofomethyltransferaseareinvolvedinbiosynthesisofanticancermethoxylated4deoxyflavonesinscutellariabaicalensisgeorgi