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本文引用的文献

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Studies of the Regulation of Nitrate Influx by Barley Seedlings Using NO(3).利用硝酸盐对大麦幼苗硝酸盐流入调节的研究
Plant Physiol. 1989 Jul;90(3):806-13. doi: 10.1104/pp.90.3.806.
2
Ammonium Uptake by Rice Roots (II. Kinetics of 13NH4+ Influx across the Plasmalemma).水稻根系对铵的吸收(II. 13NH4+跨质膜内流的动力学)
Plant Physiol. 1993 Dec;103(4):1259-1267. doi: 10.1104/pp.103.4.1259.
3
Arabidopsis seedling growth, storage lipid mobilization, and photosynthetic gene expression are regulated by carbon:nitrogen availability.拟南芥幼苗生长、储存脂质动员及光合基因表达受碳氮可利用性调控。
Plant Physiol. 2002 Feb;128(2):472-81. doi: 10.1104/pp.010475.
4
Uniport of NH4+ by the root hair plasma membrane ammonium transporter LeAMT1;1.根毛质膜铵转运蛋白LeAMT1;1对NH4+的单向运输
J Biol Chem. 2002 Apr 19;277(16):13548-55. doi: 10.1074/jbc.M200739200. Epub 2002 Jan 30.
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Characterization and regulation of ammonium transport systems in Citrus plants.柑橘类植物中铵转运系统的特性与调控
Planta. 2001 Nov;214(1):97-105. doi: 10.1007/s004250100590.
6
Apparent genetic redundancy facilitates ecological plasticity for nitrate transport.明显的基因冗余促进了硝酸盐转运的生态可塑性。
EMBO J. 2001 Nov 15;20(22):6246-55. doi: 10.1093/emboj/20.22.6246.
7
Ammonium toxicity and the real cost of transport.铵毒性与运输的实际成本。
Trends Plant Sci. 2001 Aug;6(8):335-7. doi: 10.1016/s1360-1385(01)02022-2.
8
Differential regulation of the NO3- and NH4+ transporter genes AtNrt2.1 and AtAmt1.1 in Arabidopsis: relation with long-distance and local controls by N status of the plant.拟南芥中硝酸根和铵根转运蛋白基因AtNrt2.1和AtAmt1.1的差异调控:与植物氮素状况的长距离和局部调控的关系
Plant J. 2001 Apr;26(2):143-55. doi: 10.1046/j.1365-313x.2001.01016.x.
9
Futile transmembrane NH4(+) cycling: a cellular hypothesis to explain ammonium toxicity in plants.无效跨膜铵循环:一种解释植物铵毒性的细胞假说
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10
An arabidopsis T-DNA mutant affected in Nrt2 genes is impaired in nitrate uptake.一个在Nrt2基因中受影响的拟南芥T-DNA突变体在硝酸盐吸收方面存在缺陷。
FEBS Lett. 2001 Feb 2;489(2-3):220-4. doi: 10.1016/s0014-5793(01)02096-8.

拟南芥高亲和力铵转运蛋白AtAMT1;1的T-DNA“敲除”功能分析

Functional analysis of an Arabidopsis T-DNA "knockout" of the high-affinity NH4(+) transporter AtAMT1;1.

作者信息

Kaiser Brent N, Rawat Suman R, Siddiqi M Yaeesh, Masle Josette, Glass Anthony D M

机构信息

Department of Botany, University of British Columbia, Vancouver, Canada V6T 1Z4.

出版信息

Plant Physiol. 2002 Nov;130(3):1263-75. doi: 10.1104/pp.102.010843.

DOI:10.1104/pp.102.010843
PMID:12427993
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC166647/
Abstract

NH(4)(+) acquisition by plant roots is thought to involve members of the NH(4)(+) transporter family (AMT) found in plants, yeast, bacteria, and mammals. In Arabidopsis, there are six AMT genes of which AtAMT1;1 demonstrates the highest affinity for NH(4)(+). Ammonium influx into roots and AtAMT1;1 mRNA expression levels are highly correlated diurnally and when plant nitrogen (N) status is varied. To further investigate the involvement of AtAMT1;1 in high-affinity NH(4)(+) influx, we identified a homozygous T-DNA mutant with disrupted AtAMT1;1 activity. Contrary to expectation, high-affinity (13)NH(4)(+) influx in the amt1;1:T-DNA mutant was similar to the wild type when grown with adequate N. Removal of N to increase AtAMT1;1 expression decreased high-affinity (13)NH(4)(+) influx in the mutant by 30% compared with wild-type plants, whereas low-affinity (13)NH(4)(+) influx (250 microM-10 mM NH(4)(+)) exceeded that of wild-type plants. In these N-deprived plants, mRNA copy numbers of root AtAMT1;3 and AtAMT2;1 mRNA were significantly more increased in the mutant than in wild-type plants. Under most growth conditions, amt1;1:T-DNA plants were indistinguishable from the wild type, however, leaf morphology was altered. However, when grown with NH(4)(+) and sucrose, the mutant grew poorly and died. Our results are the first in planta evidence that AtAMT1;1 is a root NH(4)(+) transporter and that redundancies within the AMT family may allow compensation for the loss of AtAMT1;1.

摘要

植物根系对铵根离子(NH₄⁺)的吸收被认为涉及植物、酵母、细菌和哺乳动物中发现的铵根离子转运蛋白家族(AMT)的成员。在拟南芥中,有六个AMT基因,其中AtAMT1;1对NH₄⁺表现出最高的亲和力。铵根离子流入根系与AtAMT1;1 mRNA表达水平在昼夜变化以及植物氮(N)状态改变时高度相关。为了进一步研究AtAMT1;1在高亲和力NH₄⁺流入中的作用,我们鉴定了一个AtAMT1;1活性被破坏的纯合T-DNA突变体。与预期相反,当在充足的氮条件下生长时,amt1;1:T-DNA突变体中的高亲和力¹³NH₄⁺流入与野生型相似。去除氮以增加AtAMT1;1表达,与野生型植物相比,突变体中的高亲和力¹³NH₄⁺流入降低了30%,而低亲和力¹³NH₄⁺流入(250微摩尔/升 - 10毫摩尔/升NH₄⁺)超过了野生型植物。在这些氮缺乏的植物中,突变体中根AtAMT1;3和AtAMT2;1 mRNA的拷贝数比野生型植物显著增加更多。在大多数生长条件下,amt1;1:T-DNA植物与野生型没有区别,然而,叶片形态发生了改变。但是,当用NH₄⁺和蔗糖培养时,突变体生长不良并死亡。我们的结果是在植物体内首次证明AtAMT1;1是一种根铵根离子转运蛋白,并且AMT家族内的冗余可能允许补偿AtAMT1;1的缺失。