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Phloem-Specific Expression of Yang Cycle Genes and Identification of Novel Yang Cycle Enzymes in Plantago and Arabidopsis

机译:车前草和拟南芥中杨周期基因的韧皮部特异性表达及新型杨周期酶的鉴定

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摘要

The 5-methylthioadenosine (MTA) or Yang cycle is a set of reactions that recycle MTA to Met. In plants, MTA is a byproduct of polyamine, ethylene, and nicotianamine biosynthesis. Vascular transcriptome analyses revealed phloem-specific expression of the Yang cycle gene 5-METHYLTHIORIBOSE KINASE1 (MTK1) in Plantago major and Arabidopsis thaliana. As Arabidopsis has only a single MTK gene, we hypothesized that the expression of other Yang cycle genes might also be vascular specific. Reporter gene studies and quantitative analyses of mRNA levels for all Yang cycle genes confirmed this hypothesis for Arabidopsis and Plantago. This includes the Yang cycle genes 5-METHYLTHIORIBOSE-1-PHOSPHATE ISOMERASE1 and DEHYDRATASE-ENOLASE-PHOSPHATASE-COMPLEX1. We show that these two enzymes are sufficient for the conversion of methylthioribose-1-phosphate to 1,2-dihydroxy-3-keto-5-methylthiopentene. In bacteria, fungi, and animals, the same conversion is catalyzed in three to four separate enzymatic steps. Furthermore, comparative analyses of vascular and nonvascular metabolites identified Met, S-adenosyl Met, and MTA preferentially or almost exclusively in the vascular tissue. Our data represent a comprehensive characterization of the Yang cycle in higher plants and demonstrate that the Yang cycle works primarily in the vasculature. Finally, expression analyses of polyamine biosynthetic genes suggest that the Yang cycle in leaves recycles MTA derived primarily from polyamine biosynthesis.
机译:5-甲基硫代腺苷(MTA)或Yang循环是一组将MTA循环成Met的反应。在植物中,MTA是多胺,乙烯和烟碱胺生物合成的副产物。血管转录组分析揭示了在大车前草和拟南芥中杨周期基因5-甲基硫代核糖激酶1(MTK1)的韧皮部特异性表达。由于拟南芥只有一个MTK基因,因此我们假设其他Yang循环基因的表达也可能是血管特异性的。记者基因研究和所有杨周期基因的mRNA水平的定量分析证实了拟南芥和车前草的这一假设。这包括Yang循环基因5-甲硫基核糖-1-磷酸异构酶1和脱氢酶-烯醇酶-磷酸酶-COMPLEX1。我们表明这两种酶足以将甲基硫代核糖-1-磷酸转化为1,2-二羟基-3-酮基-5-甲基硫代戊烯。在细菌,真菌和动物中,三到四个单独的酶促步骤可催化相同的转化。此外,对血管和非血管代谢产物的比较分析确定了Met,S-腺苷Met和MTA优先或几乎仅在血管组织中存在。我们的数据代表了高等植物中杨循环的全面特征,并证明了杨循环主要在脉管系统中起作用。最后,多胺生物合成基因的表达分析表明,叶片中的杨循环循环了主要来源于多胺生物合成的MTA。

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