Cargando…
Metabolomic and transcriptomic analyses reveal a MYB gene, CsAN1, involved in anthocyanins accumulation separation in F1 between ‘Zijuan’ (Camellia sinensis var. assamica) and ‘Fudingdabaicha’ (C. sinensis var. sinensis) tea plants
‘Zijuan’ (Camellia sinensis var. assamica), a somatic mutant with purple foliage and stem selected from the Yunnan Daye cultivar, has been well developed owing to abnormal pattern of anthocyanin accumulation. However, the genetic basis for the specific accumulation of phloem glycosides is not clear....
Autores principales: | , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Frontiers Media S.A.
2022
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9532865/ https://www.ncbi.nlm.nih.gov/pubmed/36212379 http://dx.doi.org/10.3389/fpls.2022.1008588 |
_version_ | 1784802214802358272 |
---|---|
author | Huang, Feiyi Duan, Jihua Lei, Yu Kang, Yankai Luo, Yi Chen, Yingyu Ding, Ding Li, Saijun |
author_facet | Huang, Feiyi Duan, Jihua Lei, Yu Kang, Yankai Luo, Yi Chen, Yingyu Ding, Ding Li, Saijun |
author_sort | Huang, Feiyi |
collection | PubMed |
description | ‘Zijuan’ (Camellia sinensis var. assamica), a somatic mutant with purple foliage and stem selected from the Yunnan Daye cultivar, has been well developed owing to abnormal pattern of anthocyanin accumulation. However, the genetic basis for the specific accumulation of phloem glycosides is not clear. Tea plants are self-incompatible, so parents with large differences in foliage color were used for crosses to investigate the genetic mechanism of anthocyanins. In this study, ‘Zijuan’ and green foliage cultivar ‘Fudingdabaicha’ (C. sinensis var. sinensis) were used as female and male parents, respectively, to generated F1 hybrid progenies with various anthocyanin contents. In order to decipher the genetic rules of anthocyanins accumulation, we performed widely targeted metabolic and transcriptomic profiling. The results showed that cyanidin-3-O-galactoside, delphinidin-3-O-galactoside and petunidin-3-O-galactoside were the major types of anthocyanins and factors directly led to the color variation between parents and F1 plants. Transcriptomic analyses suggested the significant up-regulation of anthocyanidin synthase gene (CsANS1) and CsAN1, a MYB family gene positively regulated the expression of CsANS1, in anthocyanin-rich tea plants. Furthermore, the deletion mutation of CsAN1 was found by cloning and alignment in anthocyanin-lacking cultivars. Taken together, the function deficiency of CsAN1 is predominantly responsible for the inability of anthocyanins accumulation, and this trait is heritable in progenies through hybridization. The present study elucidated the molecular basis of leaf purple trait formation in ‘zijuan’ and ‘Fudingdabaicha’ and their F1 plants, which helps to elucidate the genetic mechanism of leaf anthocyanin accumulation regulation in tea plants, and the results provide a research reference for the selection and breeding of high anthocyanin type tea varieties. |
format | Online Article Text |
id | pubmed-9532865 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | Frontiers Media S.A. |
record_format | MEDLINE/PubMed |
spelling | pubmed-95328652022-10-06 Metabolomic and transcriptomic analyses reveal a MYB gene, CsAN1, involved in anthocyanins accumulation separation in F1 between ‘Zijuan’ (Camellia sinensis var. assamica) and ‘Fudingdabaicha’ (C. sinensis var. sinensis) tea plants Huang, Feiyi Duan, Jihua Lei, Yu Kang, Yankai Luo, Yi Chen, Yingyu Ding, Ding Li, Saijun Front Plant Sci Plant Science ‘Zijuan’ (Camellia sinensis var. assamica), a somatic mutant with purple foliage and stem selected from the Yunnan Daye cultivar, has been well developed owing to abnormal pattern of anthocyanin accumulation. However, the genetic basis for the specific accumulation of phloem glycosides is not clear. Tea plants are self-incompatible, so parents with large differences in foliage color were used for crosses to investigate the genetic mechanism of anthocyanins. In this study, ‘Zijuan’ and green foliage cultivar ‘Fudingdabaicha’ (C. sinensis var. sinensis) were used as female and male parents, respectively, to generated F1 hybrid progenies with various anthocyanin contents. In order to decipher the genetic rules of anthocyanins accumulation, we performed widely targeted metabolic and transcriptomic profiling. The results showed that cyanidin-3-O-galactoside, delphinidin-3-O-galactoside and petunidin-3-O-galactoside were the major types of anthocyanins and factors directly led to the color variation between parents and F1 plants. Transcriptomic analyses suggested the significant up-regulation of anthocyanidin synthase gene (CsANS1) and CsAN1, a MYB family gene positively regulated the expression of CsANS1, in anthocyanin-rich tea plants. Furthermore, the deletion mutation of CsAN1 was found by cloning and alignment in anthocyanin-lacking cultivars. Taken together, the function deficiency of CsAN1 is predominantly responsible for the inability of anthocyanins accumulation, and this trait is heritable in progenies through hybridization. The present study elucidated the molecular basis of leaf purple trait formation in ‘zijuan’ and ‘Fudingdabaicha’ and their F1 plants, which helps to elucidate the genetic mechanism of leaf anthocyanin accumulation regulation in tea plants, and the results provide a research reference for the selection and breeding of high anthocyanin type tea varieties. Frontiers Media S.A. 2022-09-21 /pmc/articles/PMC9532865/ /pubmed/36212379 http://dx.doi.org/10.3389/fpls.2022.1008588 Text en Copyright © 2022 Huang, Duan, Lei, Kang, Luo, Chen, Ding and Li 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 Huang, Feiyi Duan, Jihua Lei, Yu Kang, Yankai Luo, Yi Chen, Yingyu Ding, Ding Li, Saijun Metabolomic and transcriptomic analyses reveal a MYB gene, CsAN1, involved in anthocyanins accumulation separation in F1 between ‘Zijuan’ (Camellia sinensis var. assamica) and ‘Fudingdabaicha’ (C. sinensis var. sinensis) tea plants |
title | Metabolomic and transcriptomic analyses reveal a MYB gene, CsAN1, involved in anthocyanins accumulation separation in F1 between ‘Zijuan’ (Camellia sinensis var. assamica) and ‘Fudingdabaicha’ (C. sinensis var. sinensis) tea plants |
title_full | Metabolomic and transcriptomic analyses reveal a MYB gene, CsAN1, involved in anthocyanins accumulation separation in F1 between ‘Zijuan’ (Camellia sinensis var. assamica) and ‘Fudingdabaicha’ (C. sinensis var. sinensis) tea plants |
title_fullStr | Metabolomic and transcriptomic analyses reveal a MYB gene, CsAN1, involved in anthocyanins accumulation separation in F1 between ‘Zijuan’ (Camellia sinensis var. assamica) and ‘Fudingdabaicha’ (C. sinensis var. sinensis) tea plants |
title_full_unstemmed | Metabolomic and transcriptomic analyses reveal a MYB gene, CsAN1, involved in anthocyanins accumulation separation in F1 between ‘Zijuan’ (Camellia sinensis var. assamica) and ‘Fudingdabaicha’ (C. sinensis var. sinensis) tea plants |
title_short | Metabolomic and transcriptomic analyses reveal a MYB gene, CsAN1, involved in anthocyanins accumulation separation in F1 between ‘Zijuan’ (Camellia sinensis var. assamica) and ‘Fudingdabaicha’ (C. sinensis var. sinensis) tea plants |
title_sort | metabolomic and transcriptomic analyses reveal a myb gene, csan1, involved in anthocyanins accumulation separation in f1 between ‘zijuan’ (camellia sinensis var. assamica) and ‘fudingdabaicha’ (c. sinensis var. sinensis) tea plants |
topic | Plant Science |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9532865/ https://www.ncbi.nlm.nih.gov/pubmed/36212379 http://dx.doi.org/10.3389/fpls.2022.1008588 |
work_keys_str_mv | AT huangfeiyi metabolomicandtranscriptomicanalysesrevealamybgenecsan1involvedinanthocyaninsaccumulationseparationinf1betweenzijuancamelliasinensisvarassamicaandfudingdabaichacsinensisvarsinensisteaplants AT duanjihua metabolomicandtranscriptomicanalysesrevealamybgenecsan1involvedinanthocyaninsaccumulationseparationinf1betweenzijuancamelliasinensisvarassamicaandfudingdabaichacsinensisvarsinensisteaplants AT leiyu metabolomicandtranscriptomicanalysesrevealamybgenecsan1involvedinanthocyaninsaccumulationseparationinf1betweenzijuancamelliasinensisvarassamicaandfudingdabaichacsinensisvarsinensisteaplants AT kangyankai metabolomicandtranscriptomicanalysesrevealamybgenecsan1involvedinanthocyaninsaccumulationseparationinf1betweenzijuancamelliasinensisvarassamicaandfudingdabaichacsinensisvarsinensisteaplants AT luoyi metabolomicandtranscriptomicanalysesrevealamybgenecsan1involvedinanthocyaninsaccumulationseparationinf1betweenzijuancamelliasinensisvarassamicaandfudingdabaichacsinensisvarsinensisteaplants AT chenyingyu metabolomicandtranscriptomicanalysesrevealamybgenecsan1involvedinanthocyaninsaccumulationseparationinf1betweenzijuancamelliasinensisvarassamicaandfudingdabaichacsinensisvarsinensisteaplants AT dingding metabolomicandtranscriptomicanalysesrevealamybgenecsan1involvedinanthocyaninsaccumulationseparationinf1betweenzijuancamelliasinensisvarassamicaandfudingdabaichacsinensisvarsinensisteaplants AT lisaijun metabolomicandtranscriptomicanalysesrevealamybgenecsan1involvedinanthocyaninsaccumulationseparationinf1betweenzijuancamelliasinensisvarassamicaandfudingdabaichacsinensisvarsinensisteaplants |