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Overexpressing of OsAMT1-3 a High Affinity Ammonium Transporter Gene Modifies Rice Growth and Carbon-Nitrogen Metabolic Status

机译:高亲和力铵转运体基因OsAMT1-3的过表达改变水稻的生长和碳氮代谢状态

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摘要

AMT1-3 encodes the high affinity NH4+ transporter in rice roots and is predominantly expressed under nitrogen starvation. In order to evaluate the effect of AMT1-3 gene on rice growth, nitrogen absorption and metabolism, we generated AMT1-3-overexpressing plants and analyzed the growth phenotype, yield, carbon and nitrogen metabolic status, and gene expression profiles. Although AMT1-3 mRNA accumulated in transgenic plants, these plants displayed significant decreases in growth when compared to the wild-type plants. The nitrogen uptake assay using a 15N tracer revealed poor nitrogen uptake ability in AMT1-3-overexpressing plants. We found significant decreases in AMT1-3-overexpressing plant leaf carbon and nitrogen content accompanied with a higher leaf C/N ratio. Significant changes in soluble proteins and carbohydrates were also observed in AMT1-3-overexpressing plants. In addition, metabolite profile analysis demonstrated significant changes in individual sugars, organic acids and free amino acids. Gene expression analysis revealed distinct expression patterns of genes that participate in carbon and nitrogen metabolism. Additionally, the correlation between the metabolites and gene expression patterns was consistent in AMT1-3-overexpressing plants under both low and high nitrogen growth conditions. Therefore, we hypothesized that the carbon and nitrogen metabolic imbalance caused by AMT1-3 overexpressing attributed to the poor growth and yield of transgenic plants.
机译:AMT1-3编码水稻根系中高亲和力的NH4 + 转运蛋白,并主要在氮饥饿下表达。为了评估AMT1-3基因对水稻生长,氮吸收和代谢的影响,我们生成了过量表达AMT1-3的植物,并分析了其生长表型,产量,碳和氮代谢状况以及基因表达谱。尽管AMT1-3 mRNA在转基因植物中积累,但与野生型植物相比,这些植物显示出明显的生长下降。使用 15 N示踪剂进行的氮吸收测定表明,过量表达AMT1-3的植物对氮的吸收能力较差。我们发现过量表达AMT1-3的植物叶片碳和氮含量显着下降,同时叶片C / N比更高。在过表达AMT1-3的植物中也观察到可溶性蛋白质和碳水化合物的显着变化。此外,代谢物谱分析表明单个糖,有机酸和游离氨基酸的显着变化。基因表达分析揭示了参与碳和氮代谢的基因的不同表达模式。另外,在低氮和高氮生长条件下,过表达AMT1-3的植物中代谢物与基因表达模式之间的相关性是一致的。因此,我们假设由AMT1-3过表达引起的碳氮代谢失衡归因于转基因植物的生长和产量不佳。

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