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首页> 外文期刊>BMC Plant Biology >PEPC of sugarcane regulated glutathione S-transferase and altered carbon–nitrogen metabolism under different N source concentrations in Oryza sativa
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PEPC of sugarcane regulated glutathione S-transferase and altered carbon–nitrogen metabolism under different N source concentrations in Oryza sativa

机译:甘蔗的Pepc调节谷胱甘肽S-转移酶和不同N源浓度下的碳 - 氮代谢改变的玉米苜蓿

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摘要

Phosphoenolpyruvate carboxylase (PEPC) plays an important role in the primary metabolism of higher plants. Several studies have revealed the critical importance of PEPC in the interaction of carbon and nitrogen metabolism. However, the function mechanism of PEPC in nitrogen metabolism is unclear and needs further investigation. This study indicates that transgenic rice expressing the sugarcane C4-PEPC gene displayed shorter primary roots and fewer crown roots at the seedling stage. However, total nitrogen content was significantly higher in transgenic rice than in wild type (WT) plants. Proteomic analysis revealed that there were more differentially expressed proteins (DEPs) responding to nitrogen changes in transgenic rice. In particular, the most enriched pathway “glutathione (GSH) metabolism”, which mainly contains GSH S-transferase (GST), was identified in transgenic rice. The expression of endogenous PEPC, GST and several genes involved in the TCA cycle, glycolysis and nitrogen assimilation changed in transgenic rice. Correspondingly, the activity of enzymes including GST, citrate synthase, 6-phosphofructokinase, pyruvate kinase and ferredoxin-dependent glutamate synthase significantly changed. In addition, the levels of organic acids in the TCA cycle and carbohydrates including sucrose, starch and soluble sugar altered in transgenic rice under different nitrogen source concentrations. GSH that the substrate of GST and its components including glutamic acid, cysteine and glycine accumulated in transgenic rice. Moreover, the levels of phytohormones including indoleacetic acid (IAA), zeatin (ZT) and isopentenyladenosine (2ip) were lower in the roots of transgenic rice under total nutrients. Taken together, the phenotype, physiological and biochemical characteristics of transgenic rice expressing C4-PEPC were different from WT under different nitrogen levels. Our results revealed the possibility that PEPC affects nitrogen metabolism through regulating GST, which provide a new direction and concepts for the further study of the PEPC functional mechanism in nitrogen metabolism.
机译:磷酸丙酮酸羧基酶(Pepc)在高等植物的主要代谢中起重要作用。几项研究揭示了Pepc在碳和氮代谢的相互作用中的关键重要性。然而,Pepc在氮代谢中的功能机制尚不清楚,需要进一步调查。该研究表明,表达甘蔗C4-Pepc基因的转基因水稻在幼苗阶段显示较短的初级根和较少的冠根。然而,转基因水稻总氮含量显着高于野生型(WT)植物。蛋白质组学分析显示,在转基因水稻中响应氮气变化的更差异表达的蛋白质(DEPS)。特别是,在转基因水稻中鉴定出主要含有GSH S转移酶(GST)的最富集的途径“谷胱甘肽(GSH)代谢”。在转基因水稻中,参与参与TCA循环,糖酵解和氮同化的内源性Pepc,GST和几种基因的表达。相应地,包括GST,柠檬酸盐合酶,6-磷蛋白酶,丙酮酸激酶和富勒沙蛋白依赖性谷氨酸合酶的酶的活性显着变化。此外,TCA循环和碳水化合物中有机酸的水平,包括在不同氮源浓度下在转基因水稻中改变的蔗糖,淀粉和可溶性糖。 GSH将GST的基质及其组分包括谷氨酸,半胱氨酸和甘氨酸在转基因水稻中积聚。此外,在总营养成分的转基因水稻根部的根部较低,植入植物(IAA),ZEEIN(ZT)和异戊酰基喹啉(2IP)的水平较低。结合在一起,表达C4- Pepc的转基因水稻的表型,生理和生物化学特性与不同氮水平的WT不同。我们的研究结果表明,Pepc通过调节GST来影响氮代谢,这为进一步研究了氮代谢的Pepc功能机制进一步研究了新的方向和概念。

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