Unveiling the spatial distribution and molecular mechanisms of terpenoid biosynthesis in Salvia miltiorrhiza and S. grandifolia using multi-omics and DESI–MSI

Author:

Xia Jie1,Lou Ganggui1,Zhang Lan1,Huang Yanbo2,Yang Jian3,Guo Juan3,Qi Zhechen1,Li Zhenhao4,Zhang Guoliang4,Xu Shengchun5,Song Xijiao5,Zhang Xiaodan1,Wei Yukun6,Liang Zongsuo1,Yang Dongfeng1

Affiliation:

1. Zhejiang Sci-Tech University College of Life Sciences and Medicine, Key Laboratory of Plant Secondary Metabolism and Regulation of Zhejiang Province, , 310000, Hangzhou, China

2. Shanghai Chenshan Botanical Garden Eastern China Conservation Centre for Wild Endangered Plant Resources, , 200000, Shanghai, China

3. Beijing, China Academy of Chinese Medical Sciences State Key Lab Breeding Base Dao-Di Herbs, National Resource Center Chinese Materia Medica, , 100000, Beijing, China

4. Zhejiang Shouxiangu Botanical Drug Institute Co., Ltd , 310000, Hangzhou, China

5. Zhejiang Academy of Agricultural Sciences State Key Laboratory for Managing Biotic and Chemical Threats to the Quality and Safety of Agro-products, , 310000, Hangzhou, China

6. Shanghai Botanical Garden , Shanghai, China

Abstract

Abstract Salvia miltiorrhiza and S. grandifolia are rich in diterpenoids and have therapeutic effects on cardiovascular diseases. In this study, the spatial distribution of diterpenoids in both species was analyzed by a combination of metabolomics and mass spectrometry imaging techniques. The results indicated that diterpenoids in S. miltiorrhiza were mainly abietane-type norditerpenoid quinones with a furan or dihydrofuran D-ring and were mainly distributed in the periderm of the roots, e.g. cryptotanshinone and tanshinone IIA. The compounds in S. grandifolia were mainly phenolic abietane-type tricyclic diterpenoids with six- or seven-membered C-rings, and were widely distributed in the periderm, phloem, and xylem of the roots, e.g. 11-hydroxy-sugiol, 11,20-dihydroxy-sugiol, and 11,20-dihydroxy-ferruginol. In addition, the leaves of S. grandifolia were rich in tanshinone biosynthesis precursors, such as 11-hydroxy-sugiol, while those of S. miltiorrhiza were rich in phenolic acids. Genes in the upstream pathway of tanshinone biosynthesis were highly expressed in the root of S. grandifolia, and genes in the downstream pathway were highly expressed in the root of S. miltiorrhiza. Here, we describe the specific tissue distributions and mechanisms of diterpenoids in two Salvia species, which will facilitate further investigations of the biosynthesis of diterpenoids in plant synthetic biology.

Publisher

Oxford University Press (OUP)

Subject

Horticulture,Plant Science,Genetics,Biochemistry,Biotechnology

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