Functional characterization and structural basis of a reversible glycosyltransferase involves in plant chemical defence

Author:

Cheng Weijia12,Fang Xueting2,Guan Zhifeng2,Yao Yan2,Xu Zhenni2,Bi Yunya2,Ren Kexin3,Li Jiwen4,Chen Fangfang2,Chen Xiangsong35,Ma Weihua45ORCID,Chu Zhaohui35,Deng Zixin2,Zhang Zhengyu12,Lu Li125ORCID

Affiliation:

1. Department of Integrated Traditional Chinese Medicine and Western Medicine Zhongnan Hospital of Wuhan University, School of Pharmaceutical Sciences Wuhan University Wuhan China

2. Key Laboratory of Combinatorial Biosynthesis and Drug Discovery (Ministry of Education), School of Pharmaceutical Sciences Wuhan University Wuhan China

3. State Key Laboratory of Hybrid Rice, Department of Genetics, College of Life Sciences Wuhan University Wuhan China

4. Hubei Insect Resources Utilization and Sustainable Pest Management Key Laboratory, College of Plant Science and Technology Huazhong Agricultural University Wuhan China

5. Hubei Hongshan Laboratory Wuhan China

Abstract

SummaryPlants experience numerous biotic stresses throughout their lifespan, such as pathogens and pests, which can substantially affect crop production. In response, plants have evolved various metabolites that help them withstand these stresses. Here, we show that two specialized metabolites in the herbaceous perennial Belamcanda chinensis, tectorigenin and its glycoside tectoridin, have diverse defensive effects against phytopathogenic microorganisms and antifeeding effects against insect pest. We further functionally characterized a 7‐O‐uridine diphosphate glycosyltransferase Bc7OUGT, which catalyses a novel reversible glycosylation of tectorigenin and tectoridin. To elucidate the catalytic mechanisms of Bc7OUGT, we solved its crystal structure in complex with UDP and UDP/tectorigenin respectively. Structural analysis revealed the Bc7OUGT possesses a narrow but novel substrate‐binding pocket made up by plentiful aromatic residues. Further structure‐guided mutagenesis of these residues increased both glycosylation and deglycosylation activities. The catalytic reversibility of Bc7OUGT was also successfully applied in an one‐pot aglycon exchange reaction. Our findings demonstrated the promising biopesticide activity of tectorigenin and its glycosides, and the characterization and mechanistic study of Bc7OUGT could facilitate the design of novel reversible UGTs to produce valuable glycosides with health benefits for both plants and humans.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

Plant Science,Agronomy and Crop Science,Biotechnology

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