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

Chaoling Wei(Anhui Agricultural University), Hua Yang(Anhui Agricultural University), Songbo Wang(BGI Group (China)), Jian Zhao(Anhui Agricultural University), Chun Liu(BGI Group (China)), Liping Gao(Anhui Agricultural University), Enhua Xia(Anhui Agricultural University), Ying Lü(Shanghai Ocean University), Yuling Tai(Anhui Agricultural University), Guangbiao She(Anhui Agricultural University), Jun Sun(Anhui Agricultural University), Haisheng Cao(Anhui Agricultural University), Wei Tong(Anhui Agricultural University), Qiang Gao(BGI Group (China)), Yeyun Li(Anhui Agricultural University), Wei‐Wei Deng(Anhui Agricultural University), Xiaolan Jiang(Anhui Agricultural University), Wenzhao Wang(Anhui Agricultural University), Qi Chen(Anhui Agricultural University), Shihua Zhang(Anhui Agricultural University), Haijing Li(Anhui Agricultural University), Junlan Wu(Anhui Agricultural University), Ping Wang(Anhui Agricultural University), Penghui Li(Anhui Agricultural University), Cheng-Ying Shi(Anhui Agricultural University), Fengya Zheng(BGI Group (China)), Jianbo Jian(BGI Group (China)), Bei Huang(Anhui Agricultural University), Dai Shan(BGI Group (China)), Mingming Shi(BGI Group (China)), Congbing Fang(Anhui Agricultural University), Yi Yue(Anhui Agricultural University), Fangdong Li(Anhui Agricultural University), Daxiang Li(Anhui Agricultural University), Shu Wei(Anhui Agricultural University), Bin Han(Chinese Academy of Sciences), Changjun Jiang(Anhui Agricultural University), Ye Yin(BGI Group (China)), Tao Xia(Anhui Agricultural University), Zhengzhu Zhang(Anhui Agricultural University), Jeffrey L. Bennetzen(Anhui Agricultural University), Shancen Zhao(BGI Group (China)), Xiaochun Wan(Anhui Agricultural University)
Proceedings of the National Academy of Sciences
April 20, 2018
Cited by 969Open Access
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Abstract

(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.


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