Ono Nadia N, Qin Xiaoqiong, Wilson Alexander E, Li Gang, Tian Li
Department of Plant Sciences, University of California Davis, Davis, California, United States of America.
Shanghai Key Laboratory of Plant Functional Genomics and Resources, Shanghai Chenshan Botanical Garden, Shanghai, China.
PLoS One. 2016 May 26;11(5):e0156319. doi: 10.1371/journal.pone.0156319. eCollection 2016.
Hydrolyzable tannins (HTs) play important roles in plant herbivore deterrence and promotion of human health. A critical step in HT production is the formation of 1-O-galloyl-β-D-glucopyranoside (β-glucogallin, ester-linked gallic acid and glucose) by a UDP-glucosyltransferase (UGT) activity. We cloned and biochemically characterized four candidate UGTs from pomegranate (Punica granatum), of which only UGT84A23 and UGT84A24 exhibited β-glucogallin forming activities in enzyme assays. Although overexpression and single RNAi knockdown pomegranate hairy root lines of UGT84A23 or UGT84A24 did not lead to obvious alterations in punicalagin (the prevalent HT in pomegranate) accumulation, double knockdown lines of the two UGTs resulted in largely reduced levels of punicalagins and bis-hexahydroxydiphenyl glucose isomers. An unexpected accumulation of galloyl glucosides (ether-linked gallic acid and glucose) was also detected in the double knockdown lines, suggesting that gallic acid was utilized by an unidentified UGT activity for glucoside formation. Transient expression in Nicotiana benthamiana leaves and immunogold labeling in roots of pomegranate seedlings collectively indicated cytosolic localization of UGT84A23 and UGT84A24. Overall, functional characterization and localization of UGT84A23 and UGT84A24 open up opportunities for further understanding the regulatory control of HT metabolism in plants and its coordination with other biochemical pathways in the metabolic network.
可水解单宁(HTs)在植物抵御食草动物和促进人类健康方面发挥着重要作用。HT生物合成的关键步骤是通过UDP-葡萄糖基转移酶(UGT)活性形成1-O-没食子酰基-β-D-吡喃葡萄糖苷(β-葡萄糖没食子酸酯,酯键连接的没食子酸和葡萄糖)。我们从石榴(Punica granatum)中克隆并对四种候选UGT进行了生化特性分析,其中只有UGT84A23和UGT84A24在酶活性测定中表现出β-葡萄糖没食子酸酯形成活性。虽然UGT84A23或UGT84A24的过表达和单RNAi敲除石榴毛状根系并未导致石榴皮素(石榴中普遍存在的HT)积累出现明显变化,但这两种UGT的双敲除系导致石榴皮素和双六羟基二苯葡萄糖异构体水平大幅降低。在双敲除系中还检测到没食子酰葡萄糖(醚键连接的没食子酸和葡萄糖)意外积累,这表明没食子酸被一种未知的UGT活性用于糖苷形成。在本氏烟草叶片中的瞬时表达和石榴幼苗根中的免疫金标记共同表明UGT84A23和UGT84A24定位于细胞质。总体而言,UGT84A23和UGT84A24的功能特性和定位为进一步了解植物中HT代谢的调控及其与代谢网络中其他生化途径的协调提供了机会。