Versatile CYP98A enzymes catalyse meta‐hydroxylation reveals diversity of salvianolic acids biosynthesis

Author:

Zhou Zheng12ORCID,Feng Jingxian3,Huo Juncheng2,Qiu Shi3,Zhang Pan3,Wang Yun4,Li Qing2,Li Yajing3,Han Cuicui1,Feng Xiaobing1,Duan Yonghao3,Chen Ruibin5,Xiao Ying3,He Ying1,Zhang Lei45,Chen Wansheng23ORCID

Affiliation:

1. Navy Special Medical Centre Second Military Medical University Shanghai China

2. Department of Pharmacy, Changzheng Hospital Second Military Medical University Shanghai China

3. The MOE Key Laboratory for Standardization of Chinese Medicines and the SHTCM Key Laboratory for New Resources and Quality Evaluation of Chinese Medicines, The MOE Innovation Centre for Basic Medicine Research on Qi‐Blood TCM Theories Institute of Chinese Materia Medica, Shanghai University of Traditional Chinese Medicine Shanghai China

4. Biomedical Innovation R&D Center, School of Medicine Shanghai University Shanghai China

5. School of Pharmacy Second Military Medical University Shanghai China

Abstract

SummarySalvianolic acids (SA), such as rosmarinic acid (RA), danshensu (DSS), and their derivative salvianolic acid B (SAB), etc. widely existed in Lamiaceae and Boraginaceae families, are of interest due to medicinal properties in the pharmaceutical industries. Hundreds of studies in past decades described that 4‐coumaroyl‐CoA and 4‐hydroxyphenyllactic acid (4‐HPL) are common substrates to biosynthesize SA with participation of rosmarinic acid synthase (RAS) and cytochrome P450 98A (CYP98A) subfamily enzymes in different plants. However, in our recent study, several acyl donors and acceptors included DSS as well as their ester‐forming products all were determined in SA‐rich plants, which indicated that previous recognition to SA biosynthesis is insufficient. Here, we used Salvia miltiorrhiza, a representative important medicinal plant rich in SA, to elucidate the diversity of SA biosynthesis. Various acyl donors as well as acceptors are catalysed by SmRAS to form precursors of RA and two SmCYP98A family members, SmCYP98A14 and SmCYP98A75, are responsible for different positions' meta‐hydroxylation of these precursors. SmCYP98A75 preferentially catalyses C‐3′ hydroxylation, and SmCYP98A14 preferentially catalyses C‐3 hydroxylation in RA generation. In addition, relative to C‐3′ hydroxylation of the acyl acceptor moiety in RA biosynthesis, SmCYP98A75 has been verified as the first enzyme that participates in DSS formation. Furthermore, SmCYP98A enzymes knockout resulted in the decrease and overexpression leaded to dramatic increase of SA accumlation. Our study provides new insights into SA biosynthesis diversity in SA‐abundant species and versatility of CYP98A enzymes catalytic preference in meta‐hydroxylation reactions. Moreover, CYP98A enzymes are ideal metabolic engineering targets to elevate SA content.

Publisher

Wiley

Subject

Plant Science,Agronomy and Crop Science,Biotechnology

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