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Deep Sequencing Reveals Transcriptome Re-Programming of Taxus × media Cells to the Elicitation with Methyl Jasmonate

BACKGROUND: Plant cell culture represents an alternative source for producing high-value secondary metabolites including paclitaxel (Taxol®), which is mainly produced in Taxus and has been widely used in cancer chemotherapy. The phytohormone methyl jasmonate (MeJA) can significantly increase the pro...

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Autores principales: Sun, Guiling, Yang, Yanfang, Xie, Fuliang, Wen, Jian-Fan, Wu, Jianqiang, Wilson, Iain W., Tang, Qi, Liu, Hongwei, Qiu, Deyou
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3639896/
https://www.ncbi.nlm.nih.gov/pubmed/23646152
http://dx.doi.org/10.1371/journal.pone.0062865
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author Sun, Guiling
Yang, Yanfang
Xie, Fuliang
Wen, Jian-Fan
Wu, Jianqiang
Wilson, Iain W.
Tang, Qi
Liu, Hongwei
Qiu, Deyou
author_facet Sun, Guiling
Yang, Yanfang
Xie, Fuliang
Wen, Jian-Fan
Wu, Jianqiang
Wilson, Iain W.
Tang, Qi
Liu, Hongwei
Qiu, Deyou
author_sort Sun, Guiling
collection PubMed
description BACKGROUND: Plant cell culture represents an alternative source for producing high-value secondary metabolites including paclitaxel (Taxol®), which is mainly produced in Taxus and has been widely used in cancer chemotherapy. The phytohormone methyl jasmonate (MeJA) can significantly increase the production of paclitaxel, which is induced in plants as a secondary metabolite possibly in defense against herbivores and pathogens. In cell culture, MeJA also elicits the accumulation of paclitaxel; however, the mechanism is still largely unknown. METHODOLOGY/PRINCIPAL FINDINGS: To obtain insight into the global regulation mechanism of MeJA in the steady state of paclitaxel production (7 days after MeJA addition), especially on paclitaxel biosynthesis, we sequenced the transcriptomes of MeJA-treated and untreated Taxus × media cells and obtained ∼ 32.5 M high quality reads, from which 40,348 unique sequences were obtained by de novo assembly. Expression level analysis indicated that a large number of genes were associated with transcriptional regulation, DNA and histone modification, and MeJA signaling network. All the 29 known genes involved in the biosynthesis of terpenoid backbone and paclitaxel were found with 18 genes showing increased transcript abundance following elicitation of MeJA. The significantly up-regulated changes of 9 genes in paclitaxel biosynthesis were validated by qRT-PCR assays. According to the expression changes and the previously proposed enzyme functions, multiple candidates for the unknown steps in paclitaxel biosynthesis were identified. We also found some genes putatively involved in the transport and degradation of paclitaxel. Potential target prediction of miRNAs indicated that miRNAs may play an important role in the gene expression regulation following the elicitation of MeJA. CONCLUSIONS/SIGNIFICANCE: Our results shed new light on the global regulation mechanism by which MeJA regulates the physiology of Taxus cells and is helpful to understand how MeJA elicits other plant species besides Taxus.
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spelling pubmed-36398962013-05-03 Deep Sequencing Reveals Transcriptome Re-Programming of Taxus × media Cells to the Elicitation with Methyl Jasmonate Sun, Guiling Yang, Yanfang Xie, Fuliang Wen, Jian-Fan Wu, Jianqiang Wilson, Iain W. Tang, Qi Liu, Hongwei Qiu, Deyou PLoS One Research Article BACKGROUND: Plant cell culture represents an alternative source for producing high-value secondary metabolites including paclitaxel (Taxol®), which is mainly produced in Taxus and has been widely used in cancer chemotherapy. The phytohormone methyl jasmonate (MeJA) can significantly increase the production of paclitaxel, which is induced in plants as a secondary metabolite possibly in defense against herbivores and pathogens. In cell culture, MeJA also elicits the accumulation of paclitaxel; however, the mechanism is still largely unknown. METHODOLOGY/PRINCIPAL FINDINGS: To obtain insight into the global regulation mechanism of MeJA in the steady state of paclitaxel production (7 days after MeJA addition), especially on paclitaxel biosynthesis, we sequenced the transcriptomes of MeJA-treated and untreated Taxus × media cells and obtained ∼ 32.5 M high quality reads, from which 40,348 unique sequences were obtained by de novo assembly. Expression level analysis indicated that a large number of genes were associated with transcriptional regulation, DNA and histone modification, and MeJA signaling network. All the 29 known genes involved in the biosynthesis of terpenoid backbone and paclitaxel were found with 18 genes showing increased transcript abundance following elicitation of MeJA. The significantly up-regulated changes of 9 genes in paclitaxel biosynthesis were validated by qRT-PCR assays. According to the expression changes and the previously proposed enzyme functions, multiple candidates for the unknown steps in paclitaxel biosynthesis were identified. We also found some genes putatively involved in the transport and degradation of paclitaxel. Potential target prediction of miRNAs indicated that miRNAs may play an important role in the gene expression regulation following the elicitation of MeJA. CONCLUSIONS/SIGNIFICANCE: Our results shed new light on the global regulation mechanism by which MeJA regulates the physiology of Taxus cells and is helpful to understand how MeJA elicits other plant species besides Taxus. Public Library of Science 2013-04-30 /pmc/articles/PMC3639896/ /pubmed/23646152 http://dx.doi.org/10.1371/journal.pone.0062865 Text en © 2013 Sun et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Sun, Guiling
Yang, Yanfang
Xie, Fuliang
Wen, Jian-Fan
Wu, Jianqiang
Wilson, Iain W.
Tang, Qi
Liu, Hongwei
Qiu, Deyou
Deep Sequencing Reveals Transcriptome Re-Programming of Taxus × media Cells to the Elicitation with Methyl Jasmonate
title Deep Sequencing Reveals Transcriptome Re-Programming of Taxus × media Cells to the Elicitation with Methyl Jasmonate
title_full Deep Sequencing Reveals Transcriptome Re-Programming of Taxus × media Cells to the Elicitation with Methyl Jasmonate
title_fullStr Deep Sequencing Reveals Transcriptome Re-Programming of Taxus × media Cells to the Elicitation with Methyl Jasmonate
title_full_unstemmed Deep Sequencing Reveals Transcriptome Re-Programming of Taxus × media Cells to the Elicitation with Methyl Jasmonate
title_short Deep Sequencing Reveals Transcriptome Re-Programming of Taxus × media Cells to the Elicitation with Methyl Jasmonate
title_sort deep sequencing reveals transcriptome re-programming of taxus × media cells to the elicitation with methyl jasmonate
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3639896/
https://www.ncbi.nlm.nih.gov/pubmed/23646152
http://dx.doi.org/10.1371/journal.pone.0062865
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