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Coordinated transporter activity shapes high-affinity iron acquisition in cyanobacteria

机译:协调的转运蛋白活动决定了蓝细菌中高亲和力的铁捕获

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摘要

Iron bioavailability limits biological activity in many aquatic and terrestrial environments. Broad scale genomic meta-analyses indicated that within a single organism, multiple iron transporters may contribute to iron acquisition. Here, we present a functional characterization of a cyanobacterial iron transport pathway that utilizes concerted transporter activities. Cyanobacteria are significant contributors to global primary productivity with high iron demands. Certain cyanobacterial species employ a siderophore-mediated uptake strategy; however, many strains possess neither siderophore biosynthesis nor siderophore transport genes. The unicellular, planktonic, freshwater cyanobacterium, Synechocystis sp. PCC 6803, employs an alternative to siderophore-based uptake-reduction of Fe(III) species before transport through the plasma membrane. In this study, we combine short-term radioactive iron uptake and reduction assays with a range of disruption mutants to generate a working model for iron reduction and uptake in Synechocystis sp. PCC 6803. We found that the Fe(II) transporter, FeoB, is the major iron transporter in this organism. In addition, we uncovered a link between a respiratory terminal oxidase (Alternate Respiratory Terminal Oxidase) and iron reduction - suggesting a coupling between these two electron transfer reactions. Furthermore, quantitative RNA transcript analysis identified a function for subunits of the Fe(III) transporter, FutABC, in modulating reductive iron uptake. Collectively, our results provide a molecular basis for a tightly coordinated, high-affinity iron transport system.
机译:铁的生物利用度限制了许多水生和陆地环境中的生物活性。大规模基因组荟萃分析表明,在一个生物体内,多个铁转运蛋白可能有助于铁的获取。在这里,我们介绍利用协同的转运蛋白活动的蓝细菌铁转运途径的功能表征。蓝细菌是铁需求高的全球主要生产力的重要贡献者。某些蓝细菌种类采用铁载体介导的吸收策略;然而,许多菌株既没有铁载体生物合成,也没有铁载体转运基因。单细胞,浮游,淡水蓝细菌,蓝藻属。 PCC 6803,在通过质膜传输之前,采用了一种基于铁载体的铁(III)物种吸收还原的替代方法。在这项研究中,我们将短期放射性铁的摄取和还原测定与一系列破坏突变体相结合,以生成集胞藻属中铁的还原和摄取的工作模型。 PCC6803。我们发现Fe(II)转运蛋白FeoB是该生物中的主要铁转运蛋白。此外,我们发现了呼吸末端氧化酶(另一种呼吸末端氧化酶)与铁还原之间的联系-表明这两个电子转移反应之间存在耦合。此外,定量RNA转录本分析确定了Fe(III)转运蛋白FutABC的亚基在调节还原铁摄取中的功能。总的来说,我们的结果为紧密协调的高亲和力铁转运系统提供了分子基础。

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