Cargando…
Deep Sequencing Reveals the Effect of MeJA on Scutellarin Biosynthesis in Erigeron breviscapus
BACKGROUND: Erigeron breviscapus, a well-known traditional Chinese medicinal herb, is broadly used in the treatment of cerebrovascular disease. Scutellarin, a kind of flavonoids, is considered as the material base of the pharmaceutical activities in E. breviscapus. The stable and high content of scu...
Autores principales: | , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2015
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4687647/ https://www.ncbi.nlm.nih.gov/pubmed/26656917 http://dx.doi.org/10.1371/journal.pone.0143881 |
_version_ | 1782406653717512192 |
---|---|
author | Chen, Rui-Bing Liu, Jiang-Hua Xiao, Ying Zhang, Feng Chen, Jun-feng Ji, Qian Tan, He-Xin Huang, Xin Feng, Hao Huang, Bao-Kang Chen, Wan-Sheng Zhang, Lei |
author_facet | Chen, Rui-Bing Liu, Jiang-Hua Xiao, Ying Zhang, Feng Chen, Jun-feng Ji, Qian Tan, He-Xin Huang, Xin Feng, Hao Huang, Bao-Kang Chen, Wan-Sheng Zhang, Lei |
author_sort | Chen, Rui-Bing |
collection | PubMed |
description | BACKGROUND: Erigeron breviscapus, a well-known traditional Chinese medicinal herb, is broadly used in the treatment of cerebrovascular disease. Scutellarin, a kind of flavonoids, is considered as the material base of the pharmaceutical activities in E. breviscapus. The stable and high content of scutellarin is critical for the quality and efficiency of E. breviscapus in the clinical use. Therefore, understanding the molecular mechanism of scutellarin biosynthesis is crucial for metabolic engineering to increase the content of the active compound. However, there is virtually no study available yet concerning the genetic research of scutellarin biosynthesis in E. breviscapus. RESULTS: Using Illumina sequencing technology, we obtained over three billion bases of high-quality sequence data and conducted de novo assembly and annotation without prior genome information. A total of 182,527 unigenes (mean length = 738 bp) were found. 63,059 unigenes were functionally annotated with a cut-off E-value of 10(−5). Next, a total of 238 (200 up-regulated and 38 down-regulated genes) and 513 (375 up-regulated and 138 down-regulated genes) differentially expressed genes were identified at different time points after methyl jasmonate (MeJA) treatment, which fell into categories of ‘metabolic process’ and ‘cellular process’ using GO database, suggesting that MeJA-induced activities of signal pathway in plant mainly led to re-programming of metabolism and cell activity. In addition, 13 predicted genes that might participate in the metabolism of flavonoids were found by two co-expression analyses in E. breviscapus. CONCLUSIONS: Our study is the first to provide a transcriptome sequence resource for E. breviscapus plants after MeJA treatment and it reveals transcriptome re-programming upon elicitation. As the result, several putative unknown genes involved in the metabolism of flavonoids were predicted. These data provide a valuable resource for the genetic and genomic studies of special flavonoids metabolism and further metabolic engineering in E. breviscapus. |
format | Online Article Text |
id | pubmed-4687647 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2015 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-46876472015-12-31 Deep Sequencing Reveals the Effect of MeJA on Scutellarin Biosynthesis in Erigeron breviscapus Chen, Rui-Bing Liu, Jiang-Hua Xiao, Ying Zhang, Feng Chen, Jun-feng Ji, Qian Tan, He-Xin Huang, Xin Feng, Hao Huang, Bao-Kang Chen, Wan-Sheng Zhang, Lei PLoS One Research Article BACKGROUND: Erigeron breviscapus, a well-known traditional Chinese medicinal herb, is broadly used in the treatment of cerebrovascular disease. Scutellarin, a kind of flavonoids, is considered as the material base of the pharmaceutical activities in E. breviscapus. The stable and high content of scutellarin is critical for the quality and efficiency of E. breviscapus in the clinical use. Therefore, understanding the molecular mechanism of scutellarin biosynthesis is crucial for metabolic engineering to increase the content of the active compound. However, there is virtually no study available yet concerning the genetic research of scutellarin biosynthesis in E. breviscapus. RESULTS: Using Illumina sequencing technology, we obtained over three billion bases of high-quality sequence data and conducted de novo assembly and annotation without prior genome information. A total of 182,527 unigenes (mean length = 738 bp) were found. 63,059 unigenes were functionally annotated with a cut-off E-value of 10(−5). Next, a total of 238 (200 up-regulated and 38 down-regulated genes) and 513 (375 up-regulated and 138 down-regulated genes) differentially expressed genes were identified at different time points after methyl jasmonate (MeJA) treatment, which fell into categories of ‘metabolic process’ and ‘cellular process’ using GO database, suggesting that MeJA-induced activities of signal pathway in plant mainly led to re-programming of metabolism and cell activity. In addition, 13 predicted genes that might participate in the metabolism of flavonoids were found by two co-expression analyses in E. breviscapus. CONCLUSIONS: Our study is the first to provide a transcriptome sequence resource for E. breviscapus plants after MeJA treatment and it reveals transcriptome re-programming upon elicitation. As the result, several putative unknown genes involved in the metabolism of flavonoids were predicted. These data provide a valuable resource for the genetic and genomic studies of special flavonoids metabolism and further metabolic engineering in E. breviscapus. Public Library of Science 2015-12-14 /pmc/articles/PMC4687647/ /pubmed/26656917 http://dx.doi.org/10.1371/journal.pone.0143881 Text en © 2015 Chen 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 Chen, Rui-Bing Liu, Jiang-Hua Xiao, Ying Zhang, Feng Chen, Jun-feng Ji, Qian Tan, He-Xin Huang, Xin Feng, Hao Huang, Bao-Kang Chen, Wan-Sheng Zhang, Lei Deep Sequencing Reveals the Effect of MeJA on Scutellarin Biosynthesis in Erigeron breviscapus |
title | Deep Sequencing Reveals the Effect of MeJA on Scutellarin Biosynthesis in Erigeron breviscapus
|
title_full | Deep Sequencing Reveals the Effect of MeJA on Scutellarin Biosynthesis in Erigeron breviscapus
|
title_fullStr | Deep Sequencing Reveals the Effect of MeJA on Scutellarin Biosynthesis in Erigeron breviscapus
|
title_full_unstemmed | Deep Sequencing Reveals the Effect of MeJA on Scutellarin Biosynthesis in Erigeron breviscapus
|
title_short | Deep Sequencing Reveals the Effect of MeJA on Scutellarin Biosynthesis in Erigeron breviscapus
|
title_sort | deep sequencing reveals the effect of meja on scutellarin biosynthesis in erigeron breviscapus |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4687647/ https://www.ncbi.nlm.nih.gov/pubmed/26656917 http://dx.doi.org/10.1371/journal.pone.0143881 |
work_keys_str_mv | AT chenruibing deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT liujianghua deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT xiaoying deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT zhangfeng deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT chenjunfeng deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT jiqian deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT tanhexin deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT huangxin deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT fenghao deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT huangbaokang deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT chenwansheng deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus AT zhanglei deepsequencingrevealstheeffectofmejaonscutellarinbiosynthesisinerigeronbreviscapus |