The reference genome of Camellia chekiangoleosa provides insights into Camellia evolution and tea oil biosynthesis

Author:

Shen Teng-fei1,Huang Bin2,Xu Meng1,Zhou Peng-yan1,Ni Zhou-xian1,Gong Chun2,Wen Qiang2,Cao Fu-liang1,Xu Li-An1

Affiliation:

1. Nanjing Forestry University Co-Innovation Center for Sustainable Forestry in Southern China, Key Laboratory of Forest Genetics and Biotechnology Ministry of Education, , Nanjing 210037, China

2. Jiangxi Academy of Forestry Jiangxi Provincial Key Laboratory of Camellia Germplasm Conservation and Utilization, , Nanchang, Jiangxi 330047, China

Abstract

Abstract Camellia oil extracted from Camellia seeds is rich in unsaturated fatty acids and secondary metabolites beneficial to human health. However, no oil-tea tree genome has yet been published, which is a major obstacle to investigating the heredity improvement of oil-tea trees. Here, using both Illumina and PicBio sequencing technologies, we present the first chromosome-level genome sequence of the oil-tea tree species Camellia chekiangoleosa Hu. (CCH). The assembled genome consists of 15 pseudochromosomes with a genome size of 2.73 Gb and a scaffold N50 of 185.30 Mb. At least 2.16 Gb of the genome assembly consists of repetitive sequences, and the rest involves a high-confidence set of 64 608 protein-coding gene models. Comparative genomic analysis revealed that the CCH genome underwent a whole-genome duplication event shared across the Camellia genus at ~57.48 MYA and a γ-WGT event shared across all core eudicot plants at ~120 MYA. Gene family clustering revealed that the genes involved in terpenoid biosynthesis have undergone rapid expansion. Furthermore, we determined the expression patterns of oleic acid accumulation- and terpenoid biosynthesis-associated genes in six tissues. We found that these genes tend to be highly expressed in leaves, pericarp tissues, roots, and seeds. The first chromosome-level genome of oil-tea trees will provide valuable resources for determining Camellia evolution and utilizing the germplasm of this taxon.

Publisher

Oxford University Press (OUP)

Subject

Horticulture,Plant Science,Genetics,Biochemistry,Biotechnology

Reference60 articles.

1. Prediction of fatty acid composition in camellia oil by 1H NMR combined with PLS regression;Zhu;Food Chem,2019

2. Phosphorus alleviates aluminum toxicity in Camellia oleifera seedlings;Zhou;Int J Agric Biol,2019

3. Teaoil Camellia—Eastern “olive” for the world;Zhang;Acta Hortic,2006

4. Polyunsaturated fatty acids and their potential therapeutic role in cardiovascular system disorders—a review;Sokoła-Wysoczańska;Nutrients,2018

5. Plant unsaturated fatty acids: biosynthesis and regulation;He;Front Plant Sci,2020

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