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Does Iron Deficiency in Pisum sativum Enhance the Activity of the Root Plasmalemma Iron Transport Protein?

机译:豌豆中的铁缺乏会增强根质血浆铁运输蛋白的活性吗?

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摘要

Roots of Fe-sufficient and Fe-Deficient pea (Pisum sativum L.) were studied to determine the effect of Fe-deficiency on the activity of the root-cell plasmalemma Fe2+ transport protein. Rates of Fe(III) reduction and short-term Fe2+ influx were sequentially determined in excised primary lateral roots using Fe(III)-ethylene-diaminetetraacetic acid (Fe[III]-EDTA). Since the extracellular Fe2+ for membrane transport was generated by root Fe(III) reduction, rates of Fe2+ influx for each root system were normalized on the basis of Fe(III) reducing activity. Ratios of Fe2+ influx to Fe(III) reduction (micromole Fe2+ absorbed/micromole Fe[III] reduced) revealed no enhanced Fe2+ transport capacity in roots of Fe-deficient peas (from the parental genotype, Sparkle) or the functional Fe-deficiency pea mutant, E107 (derived from Sparkle), relative to roots of Fe-sufficient Sparkle plants. Data from studies using 30 to 100 micromolar Fe(III)-EDTA indicated a linear relationship between Fe2+ influx and Fe(III) reduction (Fe2+ generation), while Fe2+ influx saturated at higher concentrations of Fe(III)-EDTA. Estimations based on current data suggest the Fe2+ transport protein may saturate in the range of 10−4.8 to 10−4 molar Fe2+. These results imply that for peas, the physiological rate limitation to Fe acquisition in most well-aerated soils would be the root system's ability to reduce soluble Fe(III)-compounds.
机译:研究了铁充足和铁不足豌豆(Pisum sativum L.)的根,以确定铁不足对根细胞质膜Fe 2 + 转运蛋白活性的影响。使用Fe(III)-乙二胺四乙酸(Fe [III] -EDTA)在切除的初生侧根中依次测定Fe(III)的还原速率和短期Fe 2 + 流入量。由于根系Fe(III)的还原产生了用于膜运输的细胞外Fe 2 + ,因此根据Fe对每个根系的Fe 2 + 流入速率进行归一化(三)降低活性。 Fe 2 + 流入量与Fe(III)还原的比率(微摩尔Fe 2 + 吸收/微摩尔Fe [III]还原)表明Fe 2+ <相对于铁充足的火花植物的根,铁不足的豌豆(来自亲本基因型Sparkle)或功能性铁不足的豌豆突变体E107(来自Sparkle)的根中的转运能力。使用30至100微摩尔Fe(III)-EDTA的研究数据表明,Fe 2 + 流入量与Fe(III)还原量(Fe 2 + 生成)之间存在线性关系,当Fe(III)-EDTA浓度较高时,Fe 2 + 流入量饱和。根据当前数据进行的估算表明,Fe 2 + 转运蛋白的饱和摩尔浓度可能在10 -4.8 至10 -4 摩尔范围内。 > 2 + 。这些结果表明,对于豌豆而言,在大多数充氧良好的土壤中对铁的吸收的生理速率限制将是根系还原可溶性Fe(III)化合物的能力。

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