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甘蓝型油菜(油菜籽)种子和幼苗中抑制UGT84A9的动态代谢变化揭示了苯丙烷途径的可塑性和分子调控。

Dynamic metabolic changes in seeds and seedlings of Brassica napus (oilseed rape) suppressing UGT84A9 reveal plasticity and molecular regulation of the phenylpropanoid pathway.

作者信息

Hettwer Karina, Böttcher Christoph, Frolov Andrej, Mittasch Juliane, Albert Andreas, von Roepenack-Lahaye Edda, Strack Dieter, Milkowski Carsten

机构信息

Department of Secondary Metabolism, Leibniz Institute of Plant Biochemistry, Weinberg 3, 06120 Halle (Saale), Germany.

Department of Stress and Developmental Biology, Leibniz Institute of Plant Biochemistry, Weinberg 3, 06120 Halle (Saale), Germany; Julius Kühn Institute, Federal Research Centre for Cultivated Plants, Institute for Ecological Chemistry, Plant Analysis and Stored Product Protection, Königin-Luise-Strasse 19, 14195 Berlin, Germany.

出版信息

Phytochemistry. 2016 Apr;124:46-57. doi: 10.1016/j.phytochem.2016.01.014. Epub 2016 Jan 28.

Abstract

In Brassica napus, suppression of the key biosynthetic enzyme UDP-glucose:sinapic acid glucosyltransferase (UGT84A9) inhibits the biosynthesis of sinapine (sinapoylcholine), the major phenolic component of seeds. Based on the accumulation kinetics of a total of 158 compounds (110 secondary and 48 primary metabolites), we investigated how suppression of the major sink pathway of sinapic acid impacts the metabolome of developing seeds and seedlings. In UGT84A9-suppressing (UGT84A9i) lines massive alterations became evident in late stages of seed development affecting the accumulation levels of 58 secondary and 7 primary metabolites. UGT84A9i seeds were characterized by decreased amounts of various hydroxycinnamic acid (HCA) esters, and increased formation of sinapic and syringic acid glycosides. This indicates glycosylation and β-oxidation as metabolic detoxification strategies to bypass intracellular accumulation of sinapic acid. In addition, a net loss of sinapic acid upon UGT84A9 suppression may point to a feedback regulation of HCA biosynthesis. Surprisingly, suppression of UGT84A9 under control of the seed-specific NAPINC promoter was maintained in cotyledons during the first two weeks of seedling development and associated with a reduced and delayed transformation of sinapine into sinapoylmalate. The lack of sinapoylmalate did not interfere with plant fitness under UV-B stress. Increased UV-B radiation triggered the accumulation of quercetin conjugates whereas the sinapoylmalate level was not affected.

摘要

在甘蓝型油菜中,关键生物合成酶UDP - 葡萄糖:芥子酸葡萄糖基转移酶(UGT84A9)的抑制作用会抑制种子主要酚类成分芥子碱(芥子酰胆碱)的生物合成。基于总共158种化合物(110种次生代谢物和48种初生代谢物)的积累动力学,我们研究了芥子酸主要库途径的抑制如何影响发育中的种子和幼苗的代谢组。在抑制UGT84A9(UGT84A9i)的株系中,种子发育后期出现了明显的大量变化,影响了58种次生代谢物和7种初生代谢物的积累水平。UGT84A9i种子的特征是各种羟基肉桂酸(HCA)酯的含量降低,以及芥子酸和丁香酸糖苷的形成增加。这表明糖基化和β - 氧化是绕过芥子酸细胞内积累的代谢解毒策略。此外,UGT84A9抑制后芥子酸的净损失可能表明HCA生物合成存在反馈调节。令人惊讶的是,在种子特异性NAPINC启动子控制下对UGT84A9的抑制在幼苗发育的前两周在子叶中持续存在,并与芥子碱向芥子酰苹果酸的转化减少和延迟有关。缺乏芥子酰苹果酸并不影响植物在UV - B胁迫下的适应性。增加UV - B辐射会引发槲皮素共轭物的积累,而芥子酰苹果酸水平不受影响。

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