Lunkenbein Stefan, Bellido Mariluz, Aharoni Asaph, Salentijn Elma M J, Kaldenhoff Ralf, Coiner Heather A, Muñoz-Blanco Juan, Schwab Wilfried
Biomolecular Food Technology, Technical University Munich, Freising, Germany.
Plant Physiol. 2006 Mar;140(3):1047-58. doi: 10.1104/pp.105.074955. Epub 2006 Jan 27.
Strawberry (Fragaria x ananassa) fruit accumulate (hydroxy)cinnamoyl glucose (Glc) esters, which may serve as the biogenetic precursors of diverse secondary metabolites, such as the flavor constituents methyl cinnamate and ethyl cinnamate. Here, we report on the isolation of a cDNA encoding a UDP-Glc:cinnamate glucosyltransferase (Fragaria x ananassa glucosyltransferase 2 [FaGT2]) from ripe strawberry cv Elsanta that catalyzes the formation of 1-O-acyl-Glc esters of cinnamic acid, benzoic acid, and their derivatives in vitro. Quantitative real-time PCR analysis indicated that FaGT2 transcripts accumulate to high levels during strawberry fruit ripening and to lower levels in flowers. The levels in fruits positively correlated with the in planta concentration of cinnamoyl, p-coumaroyl, and caffeoyl Glc. In the leaf, high amounts of Glc esters were detected, but FaGT2 mRNA was not observed. The expression of FaGT2 is negatively regulated by auxin, induced by oxidative stress, and by hydroxycinnamic acids. Although FaGT2 glucosylates a number of aromatic acids in vitro, quantitative analysis in transgenic lines containing an antisense construct of FaGT2 under the control of the constitutive 35S cauliflower mosaic virus promoter demonstrated that the enzyme is only involved in the formation of cinnamoyl Glc and p-coumaroyl Glc during ripening.
草莓(Fragaria x ananassa)果实积累(羟基)肉桂酰葡萄糖(Glc)酯,其可能作为多种次生代谢产物的生物合成前体,例如风味成分肉桂酸甲酯和肉桂酸乙酯。在此,我们报道了从成熟的草莓品种Elsanta中分离出一个编码UDP-葡萄糖:肉桂酸葡萄糖基转移酶(草莓葡萄糖基转移酶2 [FaGT2])的cDNA,该酶在体外催化肉桂酸、苯甲酸及其衍生物的1-O-酰基葡萄糖酯的形成。实时定量PCR分析表明,FaGT2转录本在草莓果实成熟过程中积累到高水平,而在花中积累到较低水平。果实中的水平与植物体内肉桂酰、对香豆酰和咖啡酰葡萄糖的浓度呈正相关。在叶片中,检测到大量的葡萄糖酯,但未观察到FaGT2 mRNA。FaGT2的表达受生长素负调控,受氧化应激和羟基肉桂酸诱导。尽管FaGT2在体外可使多种芳香酸糖基化,但在组成型35S花椰菜花叶病毒启动子控制下含有FaGT2反义构建体的转基因系中的定量分析表明,该酶仅参与成熟过程中肉桂酰葡萄糖和对香豆酰葡萄糖的形成。