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Integrated Transcriptomics and Proteomics to Reveal Regulation Mechanism and Evolution of SmWRKY61 on Tanshinone Biosynthesis in Salvia miltiorrhiza and Salvia castanea

Tanshinones found in Salvia species are the main active compounds for the treatment of cardiovascular and cerebrovascular diseases, but their contents are hugely different in different species. For example, tanshinone IIA content in Salvia castanea Diels f. tomentosa Stib. is about 49 times higher t...

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Autores principales: Chen, Yue, Wang, Yanting, Guo, Juan, Yang, Jian, Zhang, Xiaodan, Wang, Zixuan, Cheng, Ying, Du, Zewei, Qi, Zhechen, Huang, Yanbo, Dennis, Mans, Wei, Yukun, Yang, Dongfeng, Huang, Luqi, Liang, Zongsuo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8928407/
https://www.ncbi.nlm.nih.gov/pubmed/35309951
http://dx.doi.org/10.3389/fpls.2021.820582
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author Chen, Yue
Wang, Yanting
Guo, Juan
Yang, Jian
Zhang, Xiaodan
Wang, Zixuan
Cheng, Ying
Du, Zewei
Qi, Zhechen
Huang, Yanbo
Dennis, Mans
Wei, Yukun
Yang, Dongfeng
Huang, Luqi
Liang, Zongsuo
author_facet Chen, Yue
Wang, Yanting
Guo, Juan
Yang, Jian
Zhang, Xiaodan
Wang, Zixuan
Cheng, Ying
Du, Zewei
Qi, Zhechen
Huang, Yanbo
Dennis, Mans
Wei, Yukun
Yang, Dongfeng
Huang, Luqi
Liang, Zongsuo
author_sort Chen, Yue
collection PubMed
description Tanshinones found in Salvia species are the main active compounds for the treatment of cardiovascular and cerebrovascular diseases, but their contents are hugely different in different species. For example, tanshinone IIA content in Salvia castanea Diels f. tomentosa Stib. is about 49 times higher than that in Salvia miltiorrhiza Bunge. The molecular mechanism responsible for this phenomenon remains largely unknown. To address this, we performed comparative transcriptomic and proteomic analyses of S. miltiorrhiza and S. castanea. A total of 296 genes in S. castanea and 125 genes in S. miltiorrhiza were highly expressed at both the transcriptional and proteome levels, including hormone signal regulation, fungus response genes, transcription factors, and CYP450. Among these differentially expressed genes, the expression of SmWRKY61 was particularly high in S. castanea. Overexpression of SmWRKY61 in S. miltiorrhiza could significantly increase the content of tanshinone I and tanshinone IIA, which were 11.09 and 33.37 times of the control, respectively. Moreover, SmWRKY61 had a strong regulatory effect, elevating the expression levels of tanshinone pathway genes such as DXS2, CMK, HMGS2, 1, KSL1, KSL2, CYP76AH1, and CYP76AK3. For the WRKY family, 79 SmWRKYs were originally obtained and classified into three main groups. Collinearity analysis indicated a more specific extension of WRKY gene family in Salvia genus. In 55 Salvia species, only 37 species contained the WRKY61 sequence, and high SmWRKY61 expression in some Salvia L. species was often accompanied by high tanshinone accumulation. The above results suggest that SmWRKY61 is a highly effective regulator of tanshinone accumulation and may be a key factor resulting in high tanshinone accumulation in S. castanea.
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spelling pubmed-89284072022-03-18 Integrated Transcriptomics and Proteomics to Reveal Regulation Mechanism and Evolution of SmWRKY61 on Tanshinone Biosynthesis in Salvia miltiorrhiza and Salvia castanea Chen, Yue Wang, Yanting Guo, Juan Yang, Jian Zhang, Xiaodan Wang, Zixuan Cheng, Ying Du, Zewei Qi, Zhechen Huang, Yanbo Dennis, Mans Wei, Yukun Yang, Dongfeng Huang, Luqi Liang, Zongsuo Front Plant Sci Plant Science Tanshinones found in Salvia species are the main active compounds for the treatment of cardiovascular and cerebrovascular diseases, but their contents are hugely different in different species. For example, tanshinone IIA content in Salvia castanea Diels f. tomentosa Stib. is about 49 times higher than that in Salvia miltiorrhiza Bunge. The molecular mechanism responsible for this phenomenon remains largely unknown. To address this, we performed comparative transcriptomic and proteomic analyses of S. miltiorrhiza and S. castanea. A total of 296 genes in S. castanea and 125 genes in S. miltiorrhiza were highly expressed at both the transcriptional and proteome levels, including hormone signal regulation, fungus response genes, transcription factors, and CYP450. Among these differentially expressed genes, the expression of SmWRKY61 was particularly high in S. castanea. Overexpression of SmWRKY61 in S. miltiorrhiza could significantly increase the content of tanshinone I and tanshinone IIA, which were 11.09 and 33.37 times of the control, respectively. Moreover, SmWRKY61 had a strong regulatory effect, elevating the expression levels of tanshinone pathway genes such as DXS2, CMK, HMGS2, 1, KSL1, KSL2, CYP76AH1, and CYP76AK3. For the WRKY family, 79 SmWRKYs were originally obtained and classified into three main groups. Collinearity analysis indicated a more specific extension of WRKY gene family in Salvia genus. In 55 Salvia species, only 37 species contained the WRKY61 sequence, and high SmWRKY61 expression in some Salvia L. species was often accompanied by high tanshinone accumulation. The above results suggest that SmWRKY61 is a highly effective regulator of tanshinone accumulation and may be a key factor resulting in high tanshinone accumulation in S. castanea. Frontiers Media S.A. 2022-03-03 /pmc/articles/PMC8928407/ /pubmed/35309951 http://dx.doi.org/10.3389/fpls.2021.820582 Text en Copyright © 2022 Chen, Wang, Guo, Yang, Zhang, Wang, Cheng, Du, Qi, Huang, Dennis, Wei, Yang, Huang and Liang. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Chen, Yue
Wang, Yanting
Guo, Juan
Yang, Jian
Zhang, Xiaodan
Wang, Zixuan
Cheng, Ying
Du, Zewei
Qi, Zhechen
Huang, Yanbo
Dennis, Mans
Wei, Yukun
Yang, Dongfeng
Huang, Luqi
Liang, Zongsuo
Integrated Transcriptomics and Proteomics to Reveal Regulation Mechanism and Evolution of SmWRKY61 on Tanshinone Biosynthesis in Salvia miltiorrhiza and Salvia castanea
title Integrated Transcriptomics and Proteomics to Reveal Regulation Mechanism and Evolution of SmWRKY61 on Tanshinone Biosynthesis in Salvia miltiorrhiza and Salvia castanea
title_full Integrated Transcriptomics and Proteomics to Reveal Regulation Mechanism and Evolution of SmWRKY61 on Tanshinone Biosynthesis in Salvia miltiorrhiza and Salvia castanea
title_fullStr Integrated Transcriptomics and Proteomics to Reveal Regulation Mechanism and Evolution of SmWRKY61 on Tanshinone Biosynthesis in Salvia miltiorrhiza and Salvia castanea
title_full_unstemmed Integrated Transcriptomics and Proteomics to Reveal Regulation Mechanism and Evolution of SmWRKY61 on Tanshinone Biosynthesis in Salvia miltiorrhiza and Salvia castanea
title_short Integrated Transcriptomics and Proteomics to Reveal Regulation Mechanism and Evolution of SmWRKY61 on Tanshinone Biosynthesis in Salvia miltiorrhiza and Salvia castanea
title_sort integrated transcriptomics and proteomics to reveal regulation mechanism and evolution of smwrky61 on tanshinone biosynthesis in salvia miltiorrhiza and salvia castanea
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8928407/
https://www.ncbi.nlm.nih.gov/pubmed/35309951
http://dx.doi.org/10.3389/fpls.2021.820582
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