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Genetic Redundancy in Iron and Manganese Transport in the Metabolically Versatile Bacterium Rhodopseudomonas palustris TIE-1

机译:铁和锰转运中的遗传冗余在代谢通用的细菌rhodopseudomonas alpustris tie-1

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The purple nonsulfur bacterium Rhodopseudomonas palustris TIE-1 can produce useful biochemicals such as bioplastics and biobutanol. Production of such biochemicals requires intracellular electron availability, which is governed by the availability and the transport of essential metals such as iron (Fe). Because of the distinct chemical properties of ferrous [Fe(II)] and ferric iron [Fe(III)], different systems are required for their transport and storage in bacteria. Although Fe(III) transport systems are well characterized, we know much less about Fe(II) transport systems except for the FeoAB system. Iron transporters can also import manganese (Mn). We studied Fe and Mn transport by five putative Fe transporters in TIE-1 under metal-replete, metal-depleted, oxic, and anoxic conditions. We observed that by overexpressing feoAB , efeU , and nramp1AB , the intracellular concentrations of Fe and Mn can be enhanced in TIE-1 under oxic and anoxic conditions, respectively. The deletion of a single gene/operon does not attenuate Fe or Mn uptake in TIE-1 regardless of the growth conditions used. This indicates that genetically dissimilar yet functionally redundant Fe transporters in TIE-1 can complement each other. Relative gene expression analysis shows that feoAB and efeU are expressed during Fe and Mn depletion under both oxic and anoxic conditions. The promoters of these transporter genes contain a combination of Fur and Fnr boxes, suggesting that their expression is regulated by both Fe and oxygen availability. The findings from this study will help us modulate intracellular Fe and Mn concentrations, ultimately improving TIE-1’s ability to produce desirable biomolecules.IMPORTANCE Rhodopseudomonas palustris TIE-1 is a metabolically versatile bacterium that can use various electron donors, including Fe(II) and poised electrodes, for photoautotrophic growth. TIE-1 can produce useful biomolecules, such as biofuels and bioplastics, under various growth conditions. Production of such reduced biomolecules is controlled by intracellular electron availability, which, in turn, is mediated by various iron-containing proteins in the cell. Several putative Fe transporters exist in TIE-1’s genome. Some of these transporters can also transport Mn, part of several important cellular enzymes. Therefore, understanding the ability to transport and respond to various levels of Fe and Mn under different conditions is important to improve TIE-1’s ability to produce useful biomolecules. Our data suggest that by overexpressing Fe transporter genes via plasmid-based expression, we can increase the import of Fe and Mn in TIE-1. Future work will leverage these data to improve TIE-1 as an attractive microbial chassis and future biotechnological workhorse.
机译:Purple Nonsulfur Bacterium rhodopseudomonasPalustris tie-1可以产生有用的生化生化,例如生物塑料和生物丁醇。这些生化的生产需要细胞内电子可用性,这受到铁(Fe)等必需金属的可用性和运输。由于铁铬[Fe(II)]和铁[Fe(III)],因此,在细菌中运输和储存需要不同的系统。虽然Fe(iii)运输系统的特征很好,但除FeoAb系统外,我们对Fe(II)的运输系统有多少措布。铁运输车也可以进口锰(Mn)。在金属 - 填充,金属耗尽,氧化和缺氧条件下,我们研究了Fe和Mn运输五个推定的Fe转运蛋白。我们观察到,通过过表达Feoab,EFEU和Nramp1ab,可以分别在氧和缺氧条件下在Tie-1中提高Fe和Mn的细胞内浓度。无论使用的生长条件如何,单个基因/操纵子的缺失都不会衰减Tie-1中的Fe或Mn摄取。这表明Tie-1的遗传异常且功能冗余的FE转运蛋白可以相互补充。相对基因表达分析表明,在二氧化物和缺氧条件下Fe和Mn耗尽期间表达FeoAb和EFEU。这些转运基因的启动子含有毛皮和FNR箱的组合,表明它们的表达是通过Fe和氧可用性的调节。本研究的发现将有助于我们调节细胞内Fe和Mn浓度,最终改善Tie-1生产所需生物分子的能力。分析罗多孔氏菌Palustris Tie-1是可以使用各种电子供体,包括Fe(II)和平衡电极,用于光学养殖生长。 TIE-1可以在各种生长条件下生产有用的生物分子,例如生物燃料和生物塑料。通过细胞内电子可用性控制这种降低的生物分子的产生,其又通过细胞中的各种含铁蛋白介导的。几个推定的Fe转运蛋白存在于Tie-1的基因组中。其中一些转运仪也可以运输Mn,几个重要的细胞酶的一部分。因此,了解在不同条件下运输和响应各级Fe和Mn的能力对于改善Tie-1产生有用的生物分子的能力是重要的。我们的数据表明,通过过度抑制Fe转运蛋白基因通过基于质粒的表达,我们可以在Tie-1中增加Fe和Mn的进口。未来的工作将利用这些数据来改善TIE-1作为有吸引力的微生物底盘和未来的生物技术主管。

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