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Allosteric regulation of transport activity by heterotrimerization of Arabidopsis ammonium transporter complexes in vivo.

机译:通过体内拟南芥铵转运蛋白复合物的异源三聚化来调节转运活性。

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Ammonium acquisition by plant roots is mediated by AMMONIUM TRANSPORTERs (AMTs), ubiquitous membrane proteins with essential roles in nitrogen nutrition in all organisms. In microbial and plant cells, ammonium transport activity is controlled by ammonium-triggered feedback inhibition to prevent cellular ammonium toxicity. Data from heterologous expression in yeast indicate that oligomerization of plant AMTs is critical for allosteric regulation of transport activity, in which the conserved cytosolic C terminus functions as a trans-activator. Employing the coexpressed transporters AMT1;1 and AMT1;3 from Arabidopsis thaliana as a model, we show here that these two isoforms form functional homo- and heterotrimers in yeast and plant roots and that AMT1;3 carrying a phosphomimic residue in its C terminus regulates both homo- and heterotrimers in a dominant-negative fashion in vivo. 15NH4+ influx studies further indicate that allosteric inhibition represses ammonium transport activity in roots of transgenic Arabidopsis expressing a phosphomimic mutant together with functional AMT1;3 or AMT1;1. Our study demonstrates in planta a regulatory role in transport activity of heterooligomerization of transporter isoforms, which may enhance their versatility for signal exchange in response to environmental triggers.
机译:植物根部吸收铵是由铵转运体(AMT)介导的,该膜是一种普遍存在的膜蛋白,在所有生物体的氮营养中均起着重要作用。在微生物和植物细胞中,铵转运活性受铵触发的反馈抑制作用的控制,以防止细胞对铵的毒性。酵母中异源表达的数据表明,植物AMT的寡聚化对于转运活性的变构调节至关重要,其中保守的胞质C末端充当反式激活因子。使用拟南芥中共表达的转运蛋白AMT1; 1和AMT1; 3作为模型,我们在这里显示这两种同工型在酵母和植物根中形成功能性同三聚体和异源三聚体,并且AMT1; 3在其C端带有一个磷酸化残基调节体内均以显性-阴性方式同时表达均三聚体和异源三聚体。 15 NH 4 + 涌入研究进一步表明,变构抑制抑制了表达磷酸化突变体和功能性AMT1的转基因拟南芥根中的铵转运活性。 3或AMT1; 1。我们的研究表明在植物中,转运蛋白同工型的异寡聚的转运活性中具有调节作用,这可能会增强它们响应环境触发信号交换的多功能性。

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