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本文引用的文献

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Nitrate addition alleviates ammonium toxicity without lessening ammonium accumulation, organic acid depletion and inorganic cation depletion in Arabidopsis thaliana shoots.添加硝酸盐可缓解铵毒性,而不会减轻拟南芥地上部分的铵积累、有机酸耗竭和无机阳离子耗竭。
Plant Cell Physiol. 2012 Mar;53(3):577-91. doi: 10.1093/pcp/pcs012. Epub 2012 Feb 8.
2
Nitrate and ammonium lead to distinct global dynamic phosphorylation patterns when resupplied to nitrogen-starved Arabidopsis seedlings.当氮饥饿的拟南芥幼苗重新供应硝酸盐和铵时,会导致明显不同的全球动态磷酸化模式。
Plant J. 2012 Mar;69(6):978-95. doi: 10.1111/j.1365-313X.2011.04848.x. Epub 2012 Jan 20.
3
A membrane protein/signaling protein interaction network for Arabidopsis version AMPv2.拟南芥版本 AMPv2 的膜蛋白/信号蛋白相互作用网络。
Front Physiol. 2010 Sep 22;1:24. doi: 10.3389/fphys.2010.00024. eCollection 2010.
4
N-terminal cysteines affect oligomer stability of the allosterically regulated ammonium transporter LeAMT1;1.N-端半胱氨酸影响变构调节的铵转运蛋白 LeAMT1;1 的寡聚体稳定性。
J Exp Bot. 2011 Feb;62(4):1361-73. doi: 10.1093/jxb/erq379. Epub 2010 Dec 2.
5
Ammonium triggers lateral root branching in Arabidopsis in an AMMONIUM TRANSPORTER1;3-dependent manner.铵依赖于 AMMONIUM TRANSPORTER1;3 诱导拟南芥侧根分枝。
Plant Cell. 2010 Nov;22(11):3621-33. doi: 10.1105/tpc.110.076216. Epub 2010 Nov 30.
6
Characterization of a developmental root response caused by external ammonium supply in Lotus japonicus.描述由外部铵供应引起的 Lotus japonicus 发育性根反应的特征。
Plant Physiol. 2010 Oct;154(2):784-95. doi: 10.1104/pp.110.160309. Epub 2010 Aug 5.
7
Feedback inhibition of ammonium uptake by a phospho-dependent allosteric mechanism in Arabidopsis.反馈抑制氨摄取的磷酸依赖变构机制在拟南芥中。
Plant Cell. 2009 Nov;21(11):3610-22. doi: 10.1105/tpc.109.068593. Epub 2009 Nov 30.
8
Pore mutations in ammonium transporter AMT1 with increased electrogenic ammonium transport activity.铵转运蛋白AMT1中的孔突变导致电生性铵转运活性增加。
J Biol Chem. 2009 Sep 11;284(37):24988-95. doi: 10.1074/jbc.M109.020842. Epub 2009 Jul 6.
9
Heteromeric AtKC1{middle dot}AKT1 channels in Arabidopsis roots facilitate growth under K+-limiting conditions.拟南芥根中的异源AtKC1·AKT1通道在钾离子限制条件下促进生长。
J Biol Chem. 2009 Aug 7;284(32):21288-95. doi: 10.1074/jbc.M109.017574. Epub 2009 Jun 9.
10
Xanthomonas T3S Effector XopN Suppresses PAMP-Triggered Immunity and Interacts with a Tomato Atypical Receptor-Like Kinase and TFT1.黄单胞菌Ⅲ型分泌系统效应蛋白XopN抑制病原体相关分子模式触发的免疫反应,并与番茄非典型类受体激酶和TFT1相互作用。
Plant Cell. 2009 Apr;21(4):1305-23. doi: 10.1105/tpc.108.063123. Epub 2009 Apr 14.

体内通过拟南芥铵转运体复合物的三聚化实现转运活性的变构调节。

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

机构信息

Department of Plant Nutrition, College of Resources and Environmental Sciences, China Agricultural University, Beijing 100193, China.

出版信息

Plant Cell. 2013 Mar;25(3):974-84. doi: 10.1105/tpc.112.108027. Epub 2013 Mar 5.

DOI:10.1105/tpc.112.108027
PMID:23463773
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3634700/
Abstract

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. (15)NH4(+) 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.

摘要

植物根系对铵的摄取是由 AMMONIUM TRANSPORTERs(AMTs)介导的,AMTs 是普遍存在的膜蛋白,在所有生物的氮营养中都起着至关重要的作用。在微生物和植物细胞中,铵的运输活性受铵触发的反馈抑制控制,以防止细胞内铵毒性。来自酵母异源表达的数据表明,植物 AMTs 的寡聚化对于运输活性的变构调节至关重要,其中保守的细胞质 C 末端作为反式激活子起作用。本文以拟南芥的共表达转运体 AMT1;1 和 AMT1;3 作为模型,表明这两种同工型在酵母和植物根系中形成功能性同型和异型三聚体,并且其 C 末端带有磷酸模拟残基的 AMT1;3 以显性负性方式在体内调节同型和异型三聚体。(15)NH4(+)流入研究进一步表明,变构抑制在表达磷酸模拟突变体与功能性 AMT1;3 或 AMT1;1 的转基因拟南芥根系中抑制铵的运输活性。我们的研究在植物体内证明了转运体同工型的异源寡聚化在运输活性中的调节作用,这可能增强它们对环境触发因素的信号交换的多功能性。