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本文引用的文献

1
Transport kinetics and metabolism of exogenously applied putrescine in roots of intact maize seedlings.完整玉米幼苗根系中外源施加腐胺的转运动力学与代谢
Plant Physiol. 1992 Feb;98(2):611-20. doi: 10.1104/pp.98.2.611.
2
Physiological Characterization of a Single-Gene Mutant of Pisum sativum Exhibiting Excess Iron Accumulation: I. Root Iron Reduction and Iron Uptake.表现出铁过量积累的豌豆单基因突变体的生理特征:I. 根铁还原与铁吸收
Plant Physiol. 1990 Jul;93(3):976-81. doi: 10.1104/pp.93.3.976.
3
Iron-Stress Induced Redox Activity in Tomato (Lycopersicum esculentum Mill.) Is Localized on the Plasma Membrane.铁胁迫诱导的番茄(Lycopersicum esculentum Mill.)氧化还原活性定位于质膜上。
Plant Physiol. 1989 May;90(1):151-6. doi: 10.1104/pp.90.1.151.
4
Obligatory reduction of ferric chelates in iron uptake by soybeans.大豆吸收铁过程中三价铁螯合物的必需还原作用。
Plant Physiol. 1972 Aug;50(2):208-13. doi: 10.1104/pp.50.2.208.
5
Iron Reduction and Trans Plasma Membrane Electron Transfer in the Yeast Saccharomyces cerevisiae.酵母酿酒酵母中铁的还原和跨质膜电子传递。
Plant Physiol. 1992 Oct;100(2):769-77. doi: 10.1104/pp.100.2.769.
6
Growth and Nutrient Uptake by Barley (Hordeum vulgare L. cv Herta): Studies Using an N-(2-Hydroxyethyl)ethylenedinitrilotriacetic Acid-Buffered Nutrient Solution Technique (II. Role of Zinc in the Uptake and Root Leakage of Mineral Nutrients).大麦(Hordeum vulgare L. cv Herta)的生长与养分吸收:采用N-(2-羟乙基)乙二胺三乙酸缓冲营养液技术的研究(II. 锌在矿质养分吸收及根系渗漏中的作用)
Plant Physiol. 1993 Feb;101(2):627-631. doi: 10.1104/pp.101.2.627.
7
Physiological Characterization of Root Zn2+ Absorption and Translocation to Shoots in Zn Hyperaccumulator and Nonaccumulator Species of Thlaspi.遏蓝菜属锌超积累和非积累植物根系锌离子吸收及向地上部转运的生理特性
Plant Physiol. 1996 Dec;112(4):1715-1722. doi: 10.1104/pp.112.4.1715.
8
Direct Measurement of 59Fe-Labeled Fe2+ Influx in Roots of Pea Using a Chelator Buffer System to Control Free Fe2+ in Solution.使用螯合剂缓冲系统控制溶液中游离Fe2+,直接测量59Fe标记的Fe2+流入豌豆根中的情况。
Plant Physiol. 1996 May;111(1):93-100. doi: 10.1104/pp.111.1.93.
9
Genetic evidence that induction of root Fe(III) chelate reductase activity is necessary for iron uptake under iron deficiency.遗传证据表明,缺铁条件下诱导根系铁(III)螯合物还原酶活性对于铁吸收是必要的。
Plant J. 1996 Nov;10(5):835-44. doi: 10.1046/j.1365-313x.1996.10050835.x.
10
The ZRT2 gene encodes the low affinity zinc transporter in Saccharomyces cerevisiae.ZRT2基因编码酿酒酵母中的低亲和力锌转运蛋白。
J Biol Chem. 1996 Sep 20;271(38):23203-10. doi: 10.1074/jbc.271.38.23203.

缺铁胁迫反应在刺激植物重金属转运中的作用。

The role of iron-deficiency stress responses in stimulating heavy-metal transport in plants.

作者信息

Cohen CK, Fox TC, Garvin DF, Kochian LV

出版信息

Plant Physiol. 1998 Mar;116(3):1063-72. doi: 10.1104/pp.116.3.1063.

DOI:10.1104/pp.116.3.1063
PMID:9501139
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC35076/
Abstract

Plant accumulation of Fe and other metals can be enhanced under Fe deficiency. We investigated the influence of Fe status on heavy-metal and divalent-cation uptake in roots of pea (Pisum sativum L. cv Sparkle) seedlings using Cd2+ uptake as a model system. Radiotracer techniques were used to quantify unidirectional 109Cd influx into roots of Fe-deficient and Fe-sufficient pea seedlings. The concentration-dependent kinetics for 109Cd influx were graphically complex and nonsaturating but could be resolved into a linear component and a saturable component exhibiting Michaelis-Menten kinetics. We demonstrated that the linear component was apoplastically bound Cd2+ remaining in the root cell wall after desorption, whereas the saturable component was transporter-mediated Cd2+ influx across the root-cell plasma membrane. The Cd2+ transport system in roots of both Fe-deficient and Fe-sufficient seedlings exhibited similar Michaelis constant values, 1.5 and 0.6 m, respectively, for saturable Cd2+ influx, whereas the maximum initial velocity for Cd2+ uptake in Fe-deficient seedlings was nearly 7-fold higher than that in Fe-grown seedlings. Investigations into the mechanistic basis for this response demonstrated that Fe-deficiency-induced stimulation of the plasma membrane H+-ATPase did not play a role in the enhanced Cd2+ uptake. Expression studies with the Fe2+ transporter cloned from Arabidopsis, IRT1, indicated that Fe deficiency induced the expression of this transporter, which might facilitate the transport of heavy-metal divalent cations such as Cd2+ and Zn2+, in addition to Fe2+.

摘要

在缺铁条件下,植物对铁和其他金属的积累会增强。我们以镉离子吸收作为模型系统,研究了铁营养状况对豌豆(Pisum sativum L. cv Sparkle)幼苗根系中重金属和二价阳离子吸收的影响。采用放射性示踪技术对缺铁和铁充足的豌豆幼苗根系中单向109Cd流入量进行了定量分析。109Cd流入的浓度依赖性动力学在图形上较为复杂且不饱和,但可分解为线性成分和呈现米氏动力学的饱和成分。我们证明,线性成分是解吸后留在根细胞壁上的质外体结合镉离子,而饱和成分是转运蛋白介导的镉离子跨根细胞质膜流入。缺铁和铁充足幼苗根系中的镉离子转运系统对饱和镉离子流入分别表现出相似的米氏常数,分别为1.5和0.6 m,而缺铁幼苗中镉离子吸收的最大初始速度比铁充足幼苗高近7倍。对这种反应的机制基础进行的研究表明,缺铁诱导的质膜H+-ATP酶刺激在增强镉离子吸收中不起作用。对从拟南芥克隆的铁离子转运蛋白IRT1进行的表达研究表明,缺铁诱导了该转运蛋白的表达,除了铁离子外,它可能还促进了重金属二价阳离子如镉离子和锌离子的转运。