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Three functional transporters for constitutive diurnally regulated and starvation-induced uptake of ammonium into Arabidopsis roots.

机译:三种功能性转运蛋白用于组成型昼夜调节型和饥饿诱导的拟南芥根吸收铵。

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摘要

Ammonium and nitrate are the prevalent nitrogen sources for growth and development of higher plants. 15N-uptake studies demonstrated that ammonium is preferred up to 20-fold over nitrate by Arabidopsis plants. To study the regulation and complex kinetics of ammonium uptake, we isolated two new ammonium transporter (AMT) genes and showed that they functionally complemented an ammonium uptake-deficient yeast mutant. Uptake studies with 14C-methylammonium and inhibition by ammonium yielded distinct substrate affinities between </=0.5 and 40 microM. Correlation of gene expression with 15NH4+ uptake into plant roots showed that nitrogen supply and time of day differentially regulated the individual carriers. Transcript levels of AtAMT1;1, which possesses an affinity in the nanomolar range, steeply increased with ammonium uptake in roots when nitrogen nutrition became limiting, whereas those of AtAMT1;3 increased slightly, with AtAMT1;2 being more constitutively expressed. All three ammonium transporters showed diurnal variation in expression, but AtAMT1;3 transcript levels peaked with ammonium uptake at the end of the light period, suggesting that AtAMT1;3 provides a link between nitrogen assimilation and carbon provision in roots. Our results show that high-affinity ammonium uptake in roots is regulated in relation to the physiological status of the plant at the transcriptional level and by substrate affinities of individual members of the AMT1 gene family.
机译:铵和硝酸盐是高等植物生长和发育的主要氮源。 15N吸收研究表明,拟南芥植物优选铵盐比硝酸盐高多达20倍。为了研究铵吸收的调控和复杂动力学,我们分离了两个新的铵转运蛋白(AMT)基因,并显示它们在功能上与铵摄入不足的酵母突变体互补。用14 C-甲基铵的吸收研究和铵的抑制作用产生的底物亲和力在

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