The haplotype‐resolved genome of diploid Chrysanthemum indicum unveils new acacetin synthases genes and their evolutionary history

Author:

Hou Zhuangwei1,Yang Song1,He Weijun1,Lu Tingting1,Feng Xunmeng1,Zang Lanlan1,Bai Wenhui1,Chen Xueqing1,Nie Bao1,Li Cheng1,Wei Min2,Ma Liangju2,Han Zhengzhou2,Zou Qingjun23,Li Wei1,Wang Li14ORCID

Affiliation:

1. Shenzhen Branch, Guangdong Laboratory for Lingnan Modern Agriculture, Genome Analysis Laboratory of the Ministry of Agriculture, Agricultural Genomics Institute at Shenzhen Chinese Academy of Agricultural Sciences Shenzhen Guangdong China

2. China Resources Sanjiu Medical and Pharmaceutical Co., Ltd Shenzhen 518110 China

3. National Key Laboratory for Quality Ensurance and Sustainable Use of Dao‐di Herbs, National Resource Center for Chinese Materia Medica Chinese Academy of Chinese Medical Sciences Beijing 100700 China

4. State Key Laboratory for Quality Ensurance and Sustainable Use of Dao‐di Herbs Beijing 100700 China

Abstract

SUMMARYAcacetin, a flavonoid compound, possesses a wide range of pharmacological effects, including antimicrobial, immune regulation, and anticancer effects. Some key steps in its biosynthetic pathway were largely unknown in flowering plants. Here, we present the first haplotype‐resolved genome of Chrysanthemum indicum, whose dried flowers contain abundant flavonoids and have been utilized as traditional Chinese medicine. Various phylogenetic analyses revealed almost equal proportion of three tree topologies among three Chrysanthemum species (C. indicum, C. nankingense, and C. lavandulifolium), indicating that frequent gene flow among Chrysanthemum species or incomplete lineage sorting due to rapid speciation might contribute to conflict topologies. The expanded gene families in C. indicum were associated with oxidative functions. Through comprehensive candidate gene screening, we identified five flavonoid O‐methyltransferase (FOMT) candidates, which were highly expressed in flowers and whose expressional levels were significantly correlated with the content of acacetin. Further experiments validated two FOMTs (CI02A009970 and CI03A006662) were capable of catalyzing the conversion of apigenin into acacetin, and these two genes are possibly responsible acacetin accumulation in disc florets and young leaves, respectively. Furthermore, combined analyses of ancestral chromosome reconstruction and phylogenetic trees revealed the distinct evolutionary fates of the two validated FOMT genes. Our study provides new insights into the biosynthetic pathway of flavonoid compounds in the Asteraceae family and offers a model for tracing the origin and evolutionary routes of single genes. These findings will facilitate in vitro biosynthetic production of flavonoid compounds through cellular and metabolic engineering and expedite molecular breeding of C. indicum cultivars.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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