首页> 美国卫生研究院文献>The Plant Cell >Analysis of Two New Arabinosyltransferases Belonging to the Carbohydrate-Active Enzyme (CAZY) Glycosyl Transferase Family1 Provides Insights into Disease Resistance and Sugar Donor Specificity
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Analysis of Two New Arabinosyltransferases Belonging to the Carbohydrate-Active Enzyme (CAZY) Glycosyl Transferase Family1 Provides Insights into Disease Resistance and Sugar Donor Specificity

机译:属于糖活性酶(CAZY)糖基转移酶Family1的两种新型阿拉伯糖基转移酶的分析提供了对疾病抗性和供体特异性的见解

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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.
机译:小分子的糖基化对于植物的许多生物过程至关重要,包括激素稳态,中和异源生物以及特殊代谢产物的合成和储存。植物天然产物的糖基化通常通过尿苷二磷酸依赖性糖基转移酶(UGT)进行。三萜糖苷(皂苷)是一大类植物天然产物,它们决定重要的农艺性状,例如抗病性和风味,并具有许多药物应用。最具特征的植物天然产物UGT是葡萄糖基转移酶,对添加其他糖类的酶知之甚少。在这里,我们报告AsAAT1(UGT99D1)的发现和表征,这是燕麦(Avena strigosa)中抗真菌皂苷avenacin A-1的生物合成所必需的。该酶在C-3位置的三萜骨架中添加了L-Ara,这是对疾病抵抗力至关重要的修饰。先前报道的唯一植物天然产物阿拉伯糖基转移酶是来自拟南芥(Arabidopsis thaliana)的类黄酮阿拉伯糖基转移酶。我们显示AsAAT1对UDP-β-1-阿拉伯吡喃糖具有高特异性,确定糖供体特异性所需的两个氨基酸,并通过定向诱变将AsAAT1转化为葡糖基转移酶。我们进一步确定了可能与确定大豆中苦味的皂苷生物合成有关的第二个阿拉伯糖基转移酶。我们的研究表明在单子叶植物和双子叶植物中,阿拉伯糖基转移酶中UDP-Ara糖供体特异性的独立演变。

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