Volatile Glycosylation in Tea Plants: Sequential Glycosylations for the Biosynthesis of Aroma β-Primeverosides Are Catalyzed by Two Camellia sinensis Glycosyltransferases

被引:125
|
作者
Ohgami, Shoji [1 ]
Ono, Eiichiro [3 ]
Horikawa, Manabu [4 ]
Murata, Jun [4 ]
Totsuka, Koujirou [1 ]
Toyonaga, Hiromi [3 ]
Ohba, Yukie [1 ]
Dohra, Hideo [2 ]
Asai, Tatsuo [1 ]
Matsui, Kenji [5 ]
Mizutani, Masaharu [6 ]
Watanabe, Naoharu [7 ]
Ohnishi, Toshiyuki [1 ,2 ]
机构
[1] Shizuoka Univ, Grad Sch Agr, Shizuoka 4228529, Japan
[2] Shizuoka Univ, Res Inst Green Sci & Technol, Shizuoka 4228529, Japan
[3] Suntory Global Innovat Ctr, Res Inst, Mishima, Osaka 6188503, Japan
[4] Suntory Fdn Life Sci, Bioorgan Res Inst, Mishima, Osaka 6188503, Japan
[5] Yamaguchi Univ, Grad Sch Med, Yamaguchi 7538515, Japan
[6] Kobe Univ, Grad Sch Agr Sci, Kobe, Hyogo 6578501, Japan
[7] Shizuoka Univ, Grad Sch Engn, Hamamatsu, Shizuoka 4328561, Japan
基金
日本学术振兴会;
关键词
SUGAR DONOR SPECIFICITY; OOLONG TEA; ANTHOCYANIN BIOSYNTHESIS; FORMATION MECHANISM; CHEMICAL DIVERSITY; GENE COEXPRESSION; TRANS-LINALOOL; KEY ENZYME; CELL-DEATH; BLACK TEA;
D O I
10.1104/pp.15.00403
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Tea plants (Camellia sinensis) store volatile organic compounds (VOCs; monoterpene, aromatic, and aliphatic alcohols) in the leaves in the form of water-soluble diglycosides, primarily as beta-primeverosides (6-O-beta-D-xylopyranosyl-beta-D-glucopyranosides). These VOCs play a critical role in plant defenses and tea aroma quality, yet little is known about their biosynthesis and physiological roles in planta. Here, we identified two UDP-glycosyltransferases (UGTs) from C. sinensis, UGT85K11 (CsGT1) and UGT94P1 (CsGT2), converting VOCs into beta-primeverosides by sequential glucosylation and xylosylation, respectively. CsGT1 exhibits a broad substrate specificity toward monoterpene, aromatic, and aliphatic alcohols to produce the respective glucosides. On the other hand, CsGT2 specifically catalyzes the xylosylation of the 69-hydroxy group of the sugar moiety of geranyl beta-D-glucopyranoside, producing geranyl beta-primeveroside. Homology modeling, followed by site-directed mutagenesis of CsGT2, identified a unique isoleucine-141 residue playing a crucial role in sugar donor specificity toward UDP-xylose. The transcripts of both CsGTs were mainly expressed in young leaves, along with beta-PRIMEVEROSIDASE encoding a diglycoside-specific glycosidase. In conclusion, our findings reveal the mechanism of aroma beta-primeveroside biosynthesis in C. sinensis. This information can be used to preserve tea aroma better during the manufacturing process and to investigate the mechanism of plant chemical defenses.
引用
收藏
页码:464 / 477
页数:14
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