Roberts Louis A, Pierson Abbey J, Panaviene Zivile, Walker Elsbeth L
Biology Department, University of Massachusetts, Amherst, Massachusetts 01003, USA.
Plant Physiol. 2004 May;135(1):112-20. doi: 10.1104/pp.103.037572. Epub 2004 Apr 23.
Graminaceous monocots, including most of the world's staple grains (i.e. rice, corn, and wheat) use a chelation strategy (Strategy II) for primary acquisition of iron from the soil. Strategy II plants secrete phytosiderophores (PS), compounds of the mugineic acid family that form stable Fe(III) chelates in soil. Uptake of iron-PS chelates, which occurs through specific transporters at the root surface, thus represents the primary route of iron entry into Strategy II plants. The gene Yellow stripe1 (Ys1) encodes the Fe(III)-PS transporter of maize (Zea mays). Here the physiological functions performed by maize YS1 were further defined by examining the pattern of Ys1 mRNA and protein accumulation and by defining YS1 transport specificity in detail. YS1 is able to translocate iron that is bound either by PS or by the related compound, nicotianamine; thus, the role of YS1 may be to transport either of these complexes. Ys1 expression at both the mRNA and protein levels responds rapidly to changes in iron availability but is not strongly affected by limitation of copper or zinc. Our data provide no support for the idea that YS1 is a transporter of zinc-PS, based on YS1 biochemical activity and Ys1 mRNA expression patterns in response to zinc deficiency. YS1 is capable of transporting copper-PS, but expression data suggest that the copper-PS uptake has limited significance in primary uptake of copper.
禾本科单子叶植物,包括世界上大部分主食谷物(即水稻、玉米和小麦),采用螯合策略(策略II)从土壤中初步获取铁。策略II植物分泌植物铁载体(PS),即 mugineic 酸家族的化合物,它们在土壤中形成稳定的Fe(III)螯合物。通过根表面的特定转运蛋白吸收铁-PS螯合物,因此代表了铁进入策略II植物的主要途径。黄条纹1(Ys1)基因编码玉米(Zea mays)的Fe(III)-PS转运蛋白。在此,通过检查Ys1 mRNA和蛋白质积累模式以及详细定义YS1转运特异性,进一步明确了玉米YS1所执行的生理功能。YS1能够转运与PS或相关化合物烟酰胺结合的铁;因此,YS1的作用可能是转运这些复合物中的任何一种。Ys1在mRNA和蛋白质水平的表达对铁可用性的变化迅速做出反应,但不受铜或锌限制的强烈影响。基于YS1的生化活性和响应锌缺乏的Ys1 mRNA表达模式,我们的数据不支持YS1是锌-PS转运蛋白这一观点。YS1能够转运铜-PS,但表达数据表明铜-PS的吸收在铜的初步吸收中意义有限。