Cargando…

Full-length transcriptome and metabolite analysis reveal reticuline epimerase-independent pathways for benzylisoquinoline alkaloids biosynthesis in Sinomenium acutum

Benzylisoquinoline alkaloids (BIAs) are a large family of plant natural products with important pharmaceutical applications. Sinomenium acutum is a medicinal plant from the Menispermaceae family and has been used to treat rheumatoid arthritis for hundreds of years. Sinomenium acutum contains more th...

Descripción completa

Detalles Bibliográficos
Autores principales: Yang, Yufan, Sun, Ying, Wang, Zhaoxin, Yin, Maojing, Sun, Runze, Xue, Lu, Huang, Xueshuang, Wang, Chunhua, Yan, Xiaohui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9808091/
https://www.ncbi.nlm.nih.gov/pubmed/36605968
http://dx.doi.org/10.3389/fpls.2022.1086335
_version_ 1784862860156862464
author Yang, Yufan
Sun, Ying
Wang, Zhaoxin
Yin, Maojing
Sun, Runze
Xue, Lu
Huang, Xueshuang
Wang, Chunhua
Yan, Xiaohui
author_facet Yang, Yufan
Sun, Ying
Wang, Zhaoxin
Yin, Maojing
Sun, Runze
Xue, Lu
Huang, Xueshuang
Wang, Chunhua
Yan, Xiaohui
author_sort Yang, Yufan
collection PubMed
description Benzylisoquinoline alkaloids (BIAs) are a large family of plant natural products with important pharmaceutical applications. Sinomenium acutum is a medicinal plant from the Menispermaceae family and has been used to treat rheumatoid arthritis for hundreds of years. Sinomenium acutum contains more than 50 BIAs, and sinomenine is a representative BIA from this plant. Sinomenine was found to have preventive and curative effects on opioid dependence. Despite the broad applications of S. acutum, investigation on the biosynthetic pathways of BIAs from S. acutum is limited. In this study, we comprehensively analyzed the transcriptome data and BIAs in the root, stem, leaf, and seed of S. acutum. Metabolic analysis showed a noticeable difference in BIA contents in different tissues. Based on the study of the full-length transcriptome, differentially expressed genes, and weighted gene co-expression network, we proposed the biosynthetic pathways for a few BIAs from S. acutum, such as sinomenine, magnoflorine, and tetrahydropalmatine, and screened candidate genes involved in these biosynthesis processes. Notably, the reticuline epimerase (REPI/STORR), which converts (S)-reticuline to (R)-reticuline and plays an essential role in morphine and codeine biosynthesis, was not found in the transcriptome data of S. acutum. Our results shed light on the biogenesis of the BIAs in S. acutum and may pave the way for the future development of this important medicinal plant.
format Online
Article
Text
id pubmed-9808091
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-98080912023-01-04 Full-length transcriptome and metabolite analysis reveal reticuline epimerase-independent pathways for benzylisoquinoline alkaloids biosynthesis in Sinomenium acutum Yang, Yufan Sun, Ying Wang, Zhaoxin Yin, Maojing Sun, Runze Xue, Lu Huang, Xueshuang Wang, Chunhua Yan, Xiaohui Front Plant Sci Plant Science Benzylisoquinoline alkaloids (BIAs) are a large family of plant natural products with important pharmaceutical applications. Sinomenium acutum is a medicinal plant from the Menispermaceae family and has been used to treat rheumatoid arthritis for hundreds of years. Sinomenium acutum contains more than 50 BIAs, and sinomenine is a representative BIA from this plant. Sinomenine was found to have preventive and curative effects on opioid dependence. Despite the broad applications of S. acutum, investigation on the biosynthetic pathways of BIAs from S. acutum is limited. In this study, we comprehensively analyzed the transcriptome data and BIAs in the root, stem, leaf, and seed of S. acutum. Metabolic analysis showed a noticeable difference in BIA contents in different tissues. Based on the study of the full-length transcriptome, differentially expressed genes, and weighted gene co-expression network, we proposed the biosynthetic pathways for a few BIAs from S. acutum, such as sinomenine, magnoflorine, and tetrahydropalmatine, and screened candidate genes involved in these biosynthesis processes. Notably, the reticuline epimerase (REPI/STORR), which converts (S)-reticuline to (R)-reticuline and plays an essential role in morphine and codeine biosynthesis, was not found in the transcriptome data of S. acutum. Our results shed light on the biogenesis of the BIAs in S. acutum and may pave the way for the future development of this important medicinal plant. Frontiers Media S.A. 2022-12-20 /pmc/articles/PMC9808091/ /pubmed/36605968 http://dx.doi.org/10.3389/fpls.2022.1086335 Text en Copyright © 2022 Yang, Sun, Wang, Yin, Sun, Xue, Huang, Wang and Yan 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
Yang, Yufan
Sun, Ying
Wang, Zhaoxin
Yin, Maojing
Sun, Runze
Xue, Lu
Huang, Xueshuang
Wang, Chunhua
Yan, Xiaohui
Full-length transcriptome and metabolite analysis reveal reticuline epimerase-independent pathways for benzylisoquinoline alkaloids biosynthesis in Sinomenium acutum
title Full-length transcriptome and metabolite analysis reveal reticuline epimerase-independent pathways for benzylisoquinoline alkaloids biosynthesis in Sinomenium acutum
title_full Full-length transcriptome and metabolite analysis reveal reticuline epimerase-independent pathways for benzylisoquinoline alkaloids biosynthesis in Sinomenium acutum
title_fullStr Full-length transcriptome and metabolite analysis reveal reticuline epimerase-independent pathways for benzylisoquinoline alkaloids biosynthesis in Sinomenium acutum
title_full_unstemmed Full-length transcriptome and metabolite analysis reveal reticuline epimerase-independent pathways for benzylisoquinoline alkaloids biosynthesis in Sinomenium acutum
title_short Full-length transcriptome and metabolite analysis reveal reticuline epimerase-independent pathways for benzylisoquinoline alkaloids biosynthesis in Sinomenium acutum
title_sort full-length transcriptome and metabolite analysis reveal reticuline epimerase-independent pathways for benzylisoquinoline alkaloids biosynthesis in sinomenium acutum
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9808091/
https://www.ncbi.nlm.nih.gov/pubmed/36605968
http://dx.doi.org/10.3389/fpls.2022.1086335
work_keys_str_mv AT yangyufan fulllengthtranscriptomeandmetaboliteanalysisrevealreticulineepimeraseindependentpathwaysforbenzylisoquinolinealkaloidsbiosynthesisinsinomeniumacutum
AT sunying fulllengthtranscriptomeandmetaboliteanalysisrevealreticulineepimeraseindependentpathwaysforbenzylisoquinolinealkaloidsbiosynthesisinsinomeniumacutum
AT wangzhaoxin fulllengthtranscriptomeandmetaboliteanalysisrevealreticulineepimeraseindependentpathwaysforbenzylisoquinolinealkaloidsbiosynthesisinsinomeniumacutum
AT yinmaojing fulllengthtranscriptomeandmetaboliteanalysisrevealreticulineepimeraseindependentpathwaysforbenzylisoquinolinealkaloidsbiosynthesisinsinomeniumacutum
AT sunrunze fulllengthtranscriptomeandmetaboliteanalysisrevealreticulineepimeraseindependentpathwaysforbenzylisoquinolinealkaloidsbiosynthesisinsinomeniumacutum
AT xuelu fulllengthtranscriptomeandmetaboliteanalysisrevealreticulineepimeraseindependentpathwaysforbenzylisoquinolinealkaloidsbiosynthesisinsinomeniumacutum
AT huangxueshuang fulllengthtranscriptomeandmetaboliteanalysisrevealreticulineepimeraseindependentpathwaysforbenzylisoquinolinealkaloidsbiosynthesisinsinomeniumacutum
AT wangchunhua fulllengthtranscriptomeandmetaboliteanalysisrevealreticulineepimeraseindependentpathwaysforbenzylisoquinolinealkaloidsbiosynthesisinsinomeniumacutum
AT yanxiaohui fulllengthtranscriptomeandmetaboliteanalysisrevealreticulineepimeraseindependentpathwaysforbenzylisoquinolinealkaloidsbiosynthesisinsinomeniumacutum