Departament de Bioquímica i Biologia Molecular, Universitat de València, ES-46100 Burjassot, Valencia, Spain.
Plant Physiol. 2013 May;162(1):180-94. doi: 10.1104/pp.112.212407. Epub 2013 Mar 13.
Copper and iron are essential micronutrients for most living organisms because they participate as cofactors in biological processes, including respiration, photosynthesis, and oxidative stress protection. In many eukaryotic organisms, including yeast (Saccharomyces cerevisiae) and mammals, copper and iron homeostases are highly interconnected; yet, such interdependence is not well established in higher plants. Here, we propose that COPT2, a high-affinity copper transport protein, functions under copper and iron deficiencies in Arabidopsis (Arabidopsis thaliana). COPT2 is a plasma membrane protein that functions in copper acquisition and distribution. Characterization of the COPT2 expression pattern indicates a synergic response to copper and iron limitation in roots. We characterized a knockout of COPT2, copt2-1, that leads to increased resistance to simultaneous copper and iron deficiencies, measured as reduced leaf chlorosis and improved maintenance of the photosynthetic apparatus. We propose that COPT2 could play a dual role under iron deficiency. First, COPT2 participates in the attenuation of copper deficiency responses driven by iron limitation, possibly to minimize further iron consumption. Second, global expression analyses of copt2-1 versus wild-type Arabidopsis plants indicate that low-phosphate responses increase in the mutant. These results open up new biotechnological approaches to fight iron deficiency in crops.
铜和铁是大多数生物的必需微量元素,因为它们作为生物过程的辅助因子参与其中,包括呼吸、光合作用和氧化应激保护。在许多真核生物中,包括酵母(酿酒酵母)和哺乳动物,铜和铁的稳态高度相互关联;然而,这种相互依存关系在高等植物中尚未得到很好的证实。在这里,我们提出高亲和力铜转运蛋白 COPT2 在拟南芥(Arabidopsis thaliana)的铜和铁缺乏时起作用。COPT2 是一种质膜蛋白,在铜的获取和分布中起作用。COPT2 表达模式的特征表明,它在根中对铜和铁限制有协同反应。我们对 COPT2 的敲除体 copt2-1 进行了表征,该敲除体导致对同时存在的铜和铁缺乏的抗性增加,表现在叶片黄化减少和光合机构的维持得到改善。我们提出 COPT2 在缺铁条件下可能发挥双重作用。首先,COPT2 参与由铁限制驱动的铜缺乏反应的衰减,可能是为了最小化对铁的进一步消耗。其次,copt2-1 与野生型拟南芥植物的全局表达分析表明,低磷反应在突变体中增加。这些结果为在作物中对抗铁缺乏提供了新的生物技术方法。