Telomere-to-telomere reference genome for Panax ginseng highlights the evolution of saponin biosynthesis

Author:

Song Yiting12,Zhang Yating2,Wang Xu3,Yu Xikai2,Liao Yi4,Zhang Hao5,Li Linfeng6,Wang Yingping7,Liu Bao8,Li Wei29ORCID

Affiliation:

1. Huazhong Agricultural University College of Plant Science and Technology, , Wuhan 430070, China

2. Chinese Academy of Agricultural Sciences Shenzhen Branch, Guangdong Laboratory for Lingnan Modern Agriculture, Shenzhen Key Laboratory of Agricultural Synthetic Biology, Genome Analysis Laboratory of the Ministry of Agriculture and Rural Affairs, Agricultural Genomics Institute at Shenzhen, , Shenzhen 518124, China

3. Chinese Academy of Agricultural Sciences National Key Laboratory of Tropical Crop Breeding, Shenzhen Branch, Guangdong Laboratory of Lingnan Modern Agriculture, Key Laboratory of Synthetic Biology, Ministry of Agriculture and Rural Affairs, Agricultural Genomics Institute at Shenzhen, , Shenzhen 518124, China

4. South China Agricultural University College of Horticulture, , Guangzhou 510642, China

5. Chinese Academy of Agricultural Sciences Institute of Special Animal and Plant Sciences, , Changchun 130112, China

6. Fudan University Ministry of Education Key Laboratory for Biodiversity Science and Ecological Engineering, Coastal Ecosystems Research Station of Yangtze River Estuary, Institute of Biodiversity Science and Institute of Eco-Chongming, School of Life Sciences, , Songhu Road 2005, Shanghai 200433, China

7. Jilin Agricultural University State-Local Joint Engineering Research Center of Ginseng Breeding and Application, , Changchun 130118, China

8. Northeast Normal University Key Laboratory of Molecular Epigenetics of the Ministry of Education (MOE), , Changchun 130024, China

9. Chinese Academy of Agricultural Sciences Kunpeng Institute of Modern Agriculture at Foshan, Shenzhen Branch, Guangdong Laboratory of Lingnan Modern Agriculture, Agricultural Genomics Institute at Shenzhen, , Shenzhen 518124, China

Abstract

Abstract Ginseng (Panax ginseng) is a representative of Chinese traditional medicine, also used worldwide, while the triterpene saponin ginsenoside is the most important effective compound within it. Ginseng is an allotetraploid, with complex genetic background, making the study of its metabolic evolution challenging. In this study, we assembled a telomere-to-telomere ginseng reference genome, constructed of 3.45 Gb with 24 chromosomes and 77 266 protein-coding genes. Additionally, the reference genome was divided into two subgenomes, designated as subgenome A and B. Subgenome A contains a larger number of genes, whereas subgenome B has a general expression advantage, suggesting that ginseng subgenomes experienced asymmetric gene loss with biased gene expression. The two subgenomes separated approximately 6.07 million years ago, and subgenome B shows the closest relation to Panax vietnamensis var. fuscidiscus. Comparative genomics revealed an expansion of gene families associated with ginsenoside biosynthesis in both ginseng subgenomes. Furthermore, both tandem duplications and proximal duplications play crucial roles in ginsenoside biosynthesis. We also screened functional genes identified in previous research and found that some of these genes located in colinear regions between subgenomes have divergence functions, revealing an unbalanced evolution in both subgenomes and the saponin biosynthesis pathway in ginseng. Our work provides important resources for future genetic studies and breeding programs of ginseng, as well as the biosynthesis of ginsenosides.

Funder

Science and Technology Development Project of Jilin Province

Agricultural Genomics Institute at Shenzhen

National Key R&D Program of China

Publisher

Oxford University Press (OUP)

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