生物
糖基转移酶
生物化学
糖基化
木聚糖
天然产物
酶
糖基
拟南芥
葡萄糖基转移酶
拟南芥
核苷酸糖
生物合成
基因
突变体
作者
Thomas Louveau,Anastasia Orme,Hans E. Pfalzgraf,Michael J. Stephenson,Rachel E. Melton,Gerhard Saalbach,Andrew M. Hemmings,Aymeric Leveau,Martin Rejzek,Robert J. Vickerstaff,Tim Langdon,Robert A. Field,Anne Osbourn
出处
期刊:The Plant Cell
[Oxford University Press]
日期:2018-11-14
卷期号:30 (12): 3038-3057
被引量:57
摘要
Glycosylation of small molecules is critical for numerous biological processes in plants, including hormone homeostasis, neutralization of xenobiotics, and synthesis and storage of specialized metabolites. Glycosylation of plant natural products is usually performed by uridine diphosphate-dependent glycosyltransferases (UGTs). Triterpene glycosides (saponins) are a large family of plant natural products that determine important agronomic traits such as disease resistance and flavor and have numerous pharmaceutical applications. Most characterized plant natural product UGTs are glucosyltransferases, and little is known about enzymes that add other sugars. Here we report the discovery and characterization of AsAAT1 (UGT99D1), which is required for biosynthesis of the antifungal saponin avenacin A-1 in oat (Avena strigosa). This enzyme adds l-Ara to the triterpene scaffold at the C-3 position, a modification critical for disease resistance. The only previously reported plant natural product arabinosyltransferase is a flavonoid arabinosyltransferase from Arabidopsis (Arabidopsis thaliana). We show that AsAAT1 has high specificity for UDP-β-l-arabinopyranose, identify two amino acids required for sugar donor specificity, and through targeted mutagenesis convert AsAAT1 into a glucosyltransferase. We further identify a second arabinosyltransferase potentially implicated in the biosynthesis of saponins that determine bitterness in soybean (Glycine max). Our investigations suggest independent evolution of UDP-Ara sugar donor specificity in arabinosyltransferases in monocots and eudicots.
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