The apiosyltransferase celery UGT94AX1 catalyzes the biosynthesis of the flavone glycoside apiin

Author:

Yamashita Maho1,Fujimori Tae1ORCID,An Song1ORCID,Iguchi Sho1,Takenaka Yuto1,Kajiura Hiroyuki1,Yoshizawa Takuya1,Matsumura Hiroyoshi1ORCID,Kobayashi Masaru2ORCID,Ono Eiichiro3ORCID,Ishimizu Takeshi1ORCID

Affiliation:

1. College of Life Sciences, Ritsumeikan University , Kusatsu, Shiga 525-8577 , Japan

2. Graduate School of Agriculture, Kyoto University , Kyoto, Kyoto 606-8502 , Japan

3. Suntory Global Innovation Center Ltd., Research Institute , Soraku-gun, Kyoto 619-0284 , Japan

Abstract

Abstract Apiose is a unique branched-chain pentose found in plant glycosides and a key component of the cell wall polysaccharide pectin and other specialized metabolites. More than 1,200 plant-specialized metabolites contain apiose residues, represented by apiin, a distinctive flavone glycoside found in celery (Apium graveolens) and parsley (Petroselinum crispum) in the family Apiaceae. The physiological functions of apiin remain obscure, partly due to our lack of knowledge on apiosyltransferase during apiin biosynthesis. Here, we identified UGT94AX1 as an A. graveolens apiosyltransferase (AgApiT) responsible for catalyzing the last sugar modification step in apiin biosynthesis. AgApiT showed strict substrate specificity for the sugar donor, UDP-apiose, and moderate specificity for acceptor substrates, thereby producing various apiose-containing flavone glycosides in celery. Homology modeling of AgApiT with UDP-apiose, followed by site-directed mutagenesis experiments, identified unique Ile139, Phe140, and Leu356 residues in AgApiT, which are seemingly crucial for the recognition of UDP-apiose in the sugar donor pocket. Sequence comparison and molecular phylogenetic analysis of celery glycosyltransferases suggested that AgApiT is the sole apiosyltransferase-encoding gene in the celery genome. Identification of this plant apiosyltransferase gene will enhance our understanding of the physioecological functions of apiose and apiose-containing compounds.

Funder

Grant-in-Aid for Scientific Research

Fugaku Foundation

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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