Cargando…

The Biosynthetic Pathways of Tanshinones and Phenolic Acids in Salvia miltiorrhiza

Secondary metabolites from plants play key roles in human medicine and chemical industries. Due to limited accumulation of secondary metabolites in plants and their important roles, characterization of key enzymes involved in biosynthetic pathway will enable metabolic engineering or synthetic biolog...

Descripción completa

Detalles Bibliográficos
Autores principales: Ma, Xiao-Hui, Ma, Ying, Tang, Jin-Fu, He, Ya-Li, Liu, Yu-Chen, Ma, Xiao-Jing, Shen, Ye, Cui, Guang-Hong, Lin, Hui-Xin, Rong, Qi-Xian, Guo, Juan, Huang, Lu-Qi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6332233/
https://www.ncbi.nlm.nih.gov/pubmed/26370949
http://dx.doi.org/10.3390/molecules200916235
_version_ 1783387302171508736
author Ma, Xiao-Hui
Ma, Ying
Tang, Jin-Fu
He, Ya-Li
Liu, Yu-Chen
Ma, Xiao-Jing
Shen, Ye
Cui, Guang-Hong
Lin, Hui-Xin
Rong, Qi-Xian
Guo, Juan
Huang, Lu-Qi
author_facet Ma, Xiao-Hui
Ma, Ying
Tang, Jin-Fu
He, Ya-Li
Liu, Yu-Chen
Ma, Xiao-Jing
Shen, Ye
Cui, Guang-Hong
Lin, Hui-Xin
Rong, Qi-Xian
Guo, Juan
Huang, Lu-Qi
author_sort Ma, Xiao-Hui
collection PubMed
description Secondary metabolites from plants play key roles in human medicine and chemical industries. Due to limited accumulation of secondary metabolites in plants and their important roles, characterization of key enzymes involved in biosynthetic pathway will enable metabolic engineering or synthetic biology to improve or produce the compounds in plants or microorganisms, which provides an alternative for production of these valuable compounds. Salvia miltiorrhiza, containing tanshinones and phenolic acids as its active compounds, has been widely used for the treatment of cardiovascular and cerebrovascular diseases. The biosynthetic analysis of secondary metabolites in S. miltiorrhiza has made great progress due to the successful genetic transformation system, simplified hairy roots system, and high-throughput sequencing. The cloned genes in S. miltiorrhiza had provided references for functional characterization of the post-modification steps involved in biosynthesis of tanshinones and phenolic acids, and further utilization of these steps in metabolic engineering. The strategies used in these studies could provide solid foundation for elucidation of biosynthetic pathways of diterpenoids and phenolic acids in other species. The present review systematically summarizes recent advances in biosynthetic pathway analysis of tanshinones and phenolic acids as well as synthetic biology and metabolic engineering applications of the rate-limiting genes involved in the secondary metabolism in S. miltiorrhiza.
format Online
Article
Text
id pubmed-6332233
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-63322332019-01-24 The Biosynthetic Pathways of Tanshinones and Phenolic Acids in Salvia miltiorrhiza Ma, Xiao-Hui Ma, Ying Tang, Jin-Fu He, Ya-Li Liu, Yu-Chen Ma, Xiao-Jing Shen, Ye Cui, Guang-Hong Lin, Hui-Xin Rong, Qi-Xian Guo, Juan Huang, Lu-Qi Molecules Review Secondary metabolites from plants play key roles in human medicine and chemical industries. Due to limited accumulation of secondary metabolites in plants and their important roles, characterization of key enzymes involved in biosynthetic pathway will enable metabolic engineering or synthetic biology to improve or produce the compounds in plants or microorganisms, which provides an alternative for production of these valuable compounds. Salvia miltiorrhiza, containing tanshinones and phenolic acids as its active compounds, has been widely used for the treatment of cardiovascular and cerebrovascular diseases. The biosynthetic analysis of secondary metabolites in S. miltiorrhiza has made great progress due to the successful genetic transformation system, simplified hairy roots system, and high-throughput sequencing. The cloned genes in S. miltiorrhiza had provided references for functional characterization of the post-modification steps involved in biosynthesis of tanshinones and phenolic acids, and further utilization of these steps in metabolic engineering. The strategies used in these studies could provide solid foundation for elucidation of biosynthetic pathways of diterpenoids and phenolic acids in other species. The present review systematically summarizes recent advances in biosynthetic pathway analysis of tanshinones and phenolic acids as well as synthetic biology and metabolic engineering applications of the rate-limiting genes involved in the secondary metabolism in S. miltiorrhiza. MDPI 2015-09-08 /pmc/articles/PMC6332233/ /pubmed/26370949 http://dx.doi.org/10.3390/molecules200916235 Text en © 2015 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Ma, Xiao-Hui
Ma, Ying
Tang, Jin-Fu
He, Ya-Li
Liu, Yu-Chen
Ma, Xiao-Jing
Shen, Ye
Cui, Guang-Hong
Lin, Hui-Xin
Rong, Qi-Xian
Guo, Juan
Huang, Lu-Qi
The Biosynthetic Pathways of Tanshinones and Phenolic Acids in Salvia miltiorrhiza
title The Biosynthetic Pathways of Tanshinones and Phenolic Acids in Salvia miltiorrhiza
title_full The Biosynthetic Pathways of Tanshinones and Phenolic Acids in Salvia miltiorrhiza
title_fullStr The Biosynthetic Pathways of Tanshinones and Phenolic Acids in Salvia miltiorrhiza
title_full_unstemmed The Biosynthetic Pathways of Tanshinones and Phenolic Acids in Salvia miltiorrhiza
title_short The Biosynthetic Pathways of Tanshinones and Phenolic Acids in Salvia miltiorrhiza
title_sort biosynthetic pathways of tanshinones and phenolic acids in salvia miltiorrhiza
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6332233/
https://www.ncbi.nlm.nih.gov/pubmed/26370949
http://dx.doi.org/10.3390/molecules200916235
work_keys_str_mv AT maxiaohui thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT maying thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT tangjinfu thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT heyali thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT liuyuchen thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT maxiaojing thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT shenye thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT cuiguanghong thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT linhuixin thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT rongqixian thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT guojuan thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT huangluqi thebiosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT maxiaohui biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT maying biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT tangjinfu biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT heyali biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT liuyuchen biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT maxiaojing biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT shenye biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT cuiguanghong biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT linhuixin biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT rongqixian biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT guojuan biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza
AT huangluqi biosyntheticpathwaysoftanshinonesandphenolicacidsinsalviamiltiorrhiza