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Comparative transcriptome and metabolome analyses of four Panax species explore the dynamics of metabolite biosynthesis

BACKGROUND: The genus Panax in the Araliaceae family has been used as traditional medicinal plants worldwide and is known to biosynthesize ginsenosides and phytosterols. However, genetic variation between Panax species has influenced their biosynthetic pathways is not fully understood. METHODS: Simu...

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Autores principales: Koo, Hyunjin, Lee, Yun Sun, Nguyen, Van Binh, Giang, Vo Ngoc Linh, Koo, Hyun Jo, Park, Hyun-Seung, Mohanan, Padmanaban, Song, Young Hun, Ryu, Byeol, Kang, Kyo Bin, Sung, Sang Hyun, Yang, Tae-Jin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9834023/
https://www.ncbi.nlm.nih.gov/pubmed/36644396
http://dx.doi.org/10.1016/j.jgr.2022.07.001
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author Koo, Hyunjin
Lee, Yun Sun
Nguyen, Van Binh
Giang, Vo Ngoc Linh
Koo, Hyun Jo
Park, Hyun-Seung
Mohanan, Padmanaban
Song, Young Hun
Ryu, Byeol
Kang, Kyo Bin
Sung, Sang Hyun
Yang, Tae-Jin
author_facet Koo, Hyunjin
Lee, Yun Sun
Nguyen, Van Binh
Giang, Vo Ngoc Linh
Koo, Hyun Jo
Park, Hyun-Seung
Mohanan, Padmanaban
Song, Young Hun
Ryu, Byeol
Kang, Kyo Bin
Sung, Sang Hyun
Yang, Tae-Jin
author_sort Koo, Hyunjin
collection PubMed
description BACKGROUND: The genus Panax in the Araliaceae family has been used as traditional medicinal plants worldwide and is known to biosynthesize ginsenosides and phytosterols. However, genetic variation between Panax species has influenced their biosynthetic pathways is not fully understood. METHODS: Simultaneous analysis of transcriptomes and metabolomes obtained from adventitious roots of two tetraploid species (Panax ginseng and P. quinquefolius) and two diploid species (P. notoginseng and P. vietnamensis) revealed the diversity of their metabolites and related gene expression profiles. RESULTS: The transcriptome analysis showed that 2,3-OXIDOSQUALENE CYCLASEs (OSCs) involved in phytosterol biosynthesis are upregulated in the diploid species, while the expression of OSCs contributing to ginsenoside biosynthesis is higher in the tetraploid species. In agreement with these results, the contents of dammarenediol-type ginsenosides were higher in the tetraploid species relative to the diploid species. CONCLUSION: These results suggest that a whole-genome duplication event has influenced the triterpene biosynthesis pathway in tetraploid Panax species during their evolution or ecological adaptation. This study provides a basis for further efforts to explore the genetic variation of the Panax genus.
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spelling pubmed-98340232023-01-13 Comparative transcriptome and metabolome analyses of four Panax species explore the dynamics of metabolite biosynthesis Koo, Hyunjin Lee, Yun Sun Nguyen, Van Binh Giang, Vo Ngoc Linh Koo, Hyun Jo Park, Hyun-Seung Mohanan, Padmanaban Song, Young Hun Ryu, Byeol Kang, Kyo Bin Sung, Sang Hyun Yang, Tae-Jin J Ginseng Res Research Article BACKGROUND: The genus Panax in the Araliaceae family has been used as traditional medicinal plants worldwide and is known to biosynthesize ginsenosides and phytosterols. However, genetic variation between Panax species has influenced their biosynthetic pathways is not fully understood. METHODS: Simultaneous analysis of transcriptomes and metabolomes obtained from adventitious roots of two tetraploid species (Panax ginseng and P. quinquefolius) and two diploid species (P. notoginseng and P. vietnamensis) revealed the diversity of their metabolites and related gene expression profiles. RESULTS: The transcriptome analysis showed that 2,3-OXIDOSQUALENE CYCLASEs (OSCs) involved in phytosterol biosynthesis are upregulated in the diploid species, while the expression of OSCs contributing to ginsenoside biosynthesis is higher in the tetraploid species. In agreement with these results, the contents of dammarenediol-type ginsenosides were higher in the tetraploid species relative to the diploid species. CONCLUSION: These results suggest that a whole-genome duplication event has influenced the triterpene biosynthesis pathway in tetraploid Panax species during their evolution or ecological adaptation. This study provides a basis for further efforts to explore the genetic variation of the Panax genus. Elsevier 2023-01 2022-07-16 /pmc/articles/PMC9834023/ /pubmed/36644396 http://dx.doi.org/10.1016/j.jgr.2022.07.001 Text en © 2022 The Korean Society of Ginseng. Publishing services by Elsevier B.V. https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Koo, Hyunjin
Lee, Yun Sun
Nguyen, Van Binh
Giang, Vo Ngoc Linh
Koo, Hyun Jo
Park, Hyun-Seung
Mohanan, Padmanaban
Song, Young Hun
Ryu, Byeol
Kang, Kyo Bin
Sung, Sang Hyun
Yang, Tae-Jin
Comparative transcriptome and metabolome analyses of four Panax species explore the dynamics of metabolite biosynthesis
title Comparative transcriptome and metabolome analyses of four Panax species explore the dynamics of metabolite biosynthesis
title_full Comparative transcriptome and metabolome analyses of four Panax species explore the dynamics of metabolite biosynthesis
title_fullStr Comparative transcriptome and metabolome analyses of four Panax species explore the dynamics of metabolite biosynthesis
title_full_unstemmed Comparative transcriptome and metabolome analyses of four Panax species explore the dynamics of metabolite biosynthesis
title_short Comparative transcriptome and metabolome analyses of four Panax species explore the dynamics of metabolite biosynthesis
title_sort comparative transcriptome and metabolome analyses of four panax species explore the dynamics of metabolite biosynthesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9834023/
https://www.ncbi.nlm.nih.gov/pubmed/36644396
http://dx.doi.org/10.1016/j.jgr.2022.07.001
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