Cargando…

Draft genome sequence of Camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality

Tea, one of the world’s most important beverage crops, provides numerous secondary metabolites that account for its rich taste and health benefits. Here we present a high-quality sequence of the genome of tea, Camellia sinensis var. sinensis (CSS), using both Illumina and PacBio sequencing technolog...

Descripción completa

Detalles Bibliográficos
Autores principales: Wei, Chaoling, Yang, Hua, Wang, Songbo, Zhao, Jian, Liu, Chun, Gao, Liping, Xia, Enhua, Lu, Ying, Tai, Yuling, She, Guangbiao, Sun, Jun, Cao, Haisheng, Tong, Wei, Gao, Qiang, Li, Yeyun, Deng, Weiwei, Jiang, Xiaolan, Wang, Wenzhao, Chen, Qi, Zhang, Shihua, Li, Haijing, Wu, Junlan, Wang, Ping, Li, Penghui, Shi, Chengying, Zheng, Fengya, Jian, Jianbo, Huang, Bei, Shan, Dai, Shi, Mingming, Fang, Congbing, Yue, Yi, Li, Fangdong, Li, Daxiang, Wei, Shu, Han, Bin, Jiang, Changjun, Yin, Ye, Xia, Tao, Zhang, Zhengzhu, Bennetzen, Jeffrey L., Zhao, Shancen, Wan, Xiaochun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5939082/
https://www.ncbi.nlm.nih.gov/pubmed/29678829
http://dx.doi.org/10.1073/pnas.1719622115
_version_ 1783320902455263232
author Wei, Chaoling
Yang, Hua
Wang, Songbo
Zhao, Jian
Liu, Chun
Gao, Liping
Xia, Enhua
Lu, Ying
Tai, Yuling
She, Guangbiao
Sun, Jun
Cao, Haisheng
Tong, Wei
Gao, Qiang
Li, Yeyun
Deng, Weiwei
Jiang, Xiaolan
Wang, Wenzhao
Chen, Qi
Zhang, Shihua
Li, Haijing
Wu, Junlan
Wang, Ping
Li, Penghui
Shi, Chengying
Zheng, Fengya
Jian, Jianbo
Huang, Bei
Shan, Dai
Shi, Mingming
Fang, Congbing
Yue, Yi
Li, Fangdong
Li, Daxiang
Wei, Shu
Han, Bin
Jiang, Changjun
Yin, Ye
Xia, Tao
Zhang, Zhengzhu
Bennetzen, Jeffrey L.
Zhao, Shancen
Wan, Xiaochun
author_facet Wei, Chaoling
Yang, Hua
Wang, Songbo
Zhao, Jian
Liu, Chun
Gao, Liping
Xia, Enhua
Lu, Ying
Tai, Yuling
She, Guangbiao
Sun, Jun
Cao, Haisheng
Tong, Wei
Gao, Qiang
Li, Yeyun
Deng, Weiwei
Jiang, Xiaolan
Wang, Wenzhao
Chen, Qi
Zhang, Shihua
Li, Haijing
Wu, Junlan
Wang, Ping
Li, Penghui
Shi, Chengying
Zheng, Fengya
Jian, Jianbo
Huang, Bei
Shan, Dai
Shi, Mingming
Fang, Congbing
Yue, Yi
Li, Fangdong
Li, Daxiang
Wei, Shu
Han, Bin
Jiang, Changjun
Yin, Ye
Xia, Tao
Zhang, Zhengzhu
Bennetzen, Jeffrey L.
Zhao, Shancen
Wan, Xiaochun
author_sort Wei, Chaoling
collection PubMed
description Tea, one of the world’s most important beverage crops, provides numerous secondary metabolites that account for its rich taste and health benefits. Here we present a high-quality sequence of the genome of tea, Camellia sinensis var. sinensis (CSS), using both Illumina and PacBio sequencing technologies. At least 64% of the 3.1-Gb genome assembly consists of repetitive sequences, and the rest yields 33,932 high-confidence predictions of encoded proteins. Divergence between two major lineages, CSS and Camellia sinensis var. assamica (CSA), is calculated to ∼0.38 to 1.54 million years ago (Mya). Analysis of genic collinearity reveals that the tea genome is the product of two rounds of whole-genome duplications (WGDs) that occurred ∼30 to 40 and ∼90 to 100 Mya. We provide evidence that these WGD events, and subsequent paralogous duplications, had major impacts on the copy numbers of secondary metabolite genes, particularly genes critical to producing three key quality compounds: catechins, theanine, and caffeine. Analyses of transcriptome and phytochemistry data show that amplification and transcriptional divergence of genes encoding a large acyltransferase family and leucoanthocyanidin reductases are associated with the characteristic young leaf accumulation of monomeric galloylated catechins in tea, while functional divergence of a single member of the glutamine synthetase gene family yielded theanine synthetase. This genome sequence will facilitate understanding of tea genome evolution and tea metabolite pathways, and will promote germplasm utilization for breeding improved tea varieties.
format Online
Article
Text
id pubmed-5939082
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher National Academy of Sciences
record_format MEDLINE/PubMed
spelling pubmed-59390822018-05-09 Draft genome sequence of Camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality Wei, Chaoling Yang, Hua Wang, Songbo Zhao, Jian Liu, Chun Gao, Liping Xia, Enhua Lu, Ying Tai, Yuling She, Guangbiao Sun, Jun Cao, Haisheng Tong, Wei Gao, Qiang Li, Yeyun Deng, Weiwei Jiang, Xiaolan Wang, Wenzhao Chen, Qi Zhang, Shihua Li, Haijing Wu, Junlan Wang, Ping Li, Penghui Shi, Chengying Zheng, Fengya Jian, Jianbo Huang, Bei Shan, Dai Shi, Mingming Fang, Congbing Yue, Yi Li, Fangdong Li, Daxiang Wei, Shu Han, Bin Jiang, Changjun Yin, Ye Xia, Tao Zhang, Zhengzhu Bennetzen, Jeffrey L. Zhao, Shancen Wan, Xiaochun Proc Natl Acad Sci U S A PNAS Plus Tea, one of the world’s most important beverage crops, provides numerous secondary metabolites that account for its rich taste and health benefits. Here we present a high-quality sequence of the genome of tea, Camellia sinensis var. sinensis (CSS), using both Illumina and PacBio sequencing technologies. At least 64% of the 3.1-Gb genome assembly consists of repetitive sequences, and the rest yields 33,932 high-confidence predictions of encoded proteins. Divergence between two major lineages, CSS and Camellia sinensis var. assamica (CSA), is calculated to ∼0.38 to 1.54 million years ago (Mya). Analysis of genic collinearity reveals that the tea genome is the product of two rounds of whole-genome duplications (WGDs) that occurred ∼30 to 40 and ∼90 to 100 Mya. We provide evidence that these WGD events, and subsequent paralogous duplications, had major impacts on the copy numbers of secondary metabolite genes, particularly genes critical to producing three key quality compounds: catechins, theanine, and caffeine. Analyses of transcriptome and phytochemistry data show that amplification and transcriptional divergence of genes encoding a large acyltransferase family and leucoanthocyanidin reductases are associated with the characteristic young leaf accumulation of monomeric galloylated catechins in tea, while functional divergence of a single member of the glutamine synthetase gene family yielded theanine synthetase. This genome sequence will facilitate understanding of tea genome evolution and tea metabolite pathways, and will promote germplasm utilization for breeding improved tea varieties. National Academy of Sciences 2018-05-01 2018-04-20 /pmc/articles/PMC5939082/ /pubmed/29678829 http://dx.doi.org/10.1073/pnas.1719622115 Text en Copyright © 2018 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle PNAS Plus
Wei, Chaoling
Yang, Hua
Wang, Songbo
Zhao, Jian
Liu, Chun
Gao, Liping
Xia, Enhua
Lu, Ying
Tai, Yuling
She, Guangbiao
Sun, Jun
Cao, Haisheng
Tong, Wei
Gao, Qiang
Li, Yeyun
Deng, Weiwei
Jiang, Xiaolan
Wang, Wenzhao
Chen, Qi
Zhang, Shihua
Li, Haijing
Wu, Junlan
Wang, Ping
Li, Penghui
Shi, Chengying
Zheng, Fengya
Jian, Jianbo
Huang, Bei
Shan, Dai
Shi, Mingming
Fang, Congbing
Yue, Yi
Li, Fangdong
Li, Daxiang
Wei, Shu
Han, Bin
Jiang, Changjun
Yin, Ye
Xia, Tao
Zhang, Zhengzhu
Bennetzen, Jeffrey L.
Zhao, Shancen
Wan, Xiaochun
Draft genome sequence of Camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality
title Draft genome sequence of Camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality
title_full Draft genome sequence of Camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality
title_fullStr Draft genome sequence of Camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality
title_full_unstemmed Draft genome sequence of Camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality
title_short Draft genome sequence of Camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality
title_sort draft genome sequence of camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality
topic PNAS Plus
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5939082/
https://www.ncbi.nlm.nih.gov/pubmed/29678829
http://dx.doi.org/10.1073/pnas.1719622115
work_keys_str_mv AT weichaoling draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT yanghua draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT wangsongbo draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT zhaojian draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT liuchun draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT gaoliping draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT xiaenhua draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT luying draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT taiyuling draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT sheguangbiao draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT sunjun draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT caohaisheng draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT tongwei draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT gaoqiang draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT liyeyun draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT dengweiwei draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT jiangxiaolan draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT wangwenzhao draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT chenqi draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT zhangshihua draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT lihaijing draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT wujunlan draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT wangping draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT lipenghui draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT shichengying draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT zhengfengya draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT jianjianbo draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT huangbei draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT shandai draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT shimingming draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT fangcongbing draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT yueyi draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT lifangdong draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT lidaxiang draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT weishu draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT hanbin draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT jiangchangjun draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT yinye draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT xiatao draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT zhangzhengzhu draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT bennetzenjeffreyl draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT zhaoshancen draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality
AT wanxiaochun draftgenomesequenceofcamelliasinensisvarsinensisprovidesinsightsintotheevolutionoftheteagenomeandteaquality