首页> 美国卫生研究院文献>Applied and Environmental Microbiology >Genome-Wide Gene Expression Patterns and Growth Requirements Suggest that Pelobacter carbinolicus Reduces Fe(III) Indirectly via Sulfide Production
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Genome-Wide Gene Expression Patterns and Growth Requirements Suggest that Pelobacter carbinolicus Reduces Fe(III) Indirectly via Sulfide Production

机译:基因组范围内的基因表达模式和生长要求表明拟杆菌(Pelobacter carbinolicus)通过硫化物间接还原Fe(III)

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摘要

Although Pelobacter species are closely related to Geobacter species, recent studies suggested that Pelobacter carbinolicus may reduce Fe(III) via a different mechanism because it lacks the outer-surface c-type cytochromes that are required for Fe(III) reduction by Geobacter sulfurreducens. Investigation into the mechanisms for Fe(III) reduction demonstrated that P. carbinolicus had growth yields on both soluble and insoluble Fe(III) consistent with those of other Fe(III)-reducing bacteria. Comparison of whole-genome transcript levels during growth on Fe(III) versus fermentative growth demonstrated that the greatest apparent change in gene expression was an increase in transcript levels for four contiguous genes. These genes encode two putative periplasmic thioredoxins; a putative outer-membrane transport protein; and a putative NAD(FAD)-dependent dehydrogenase with homology to disulfide oxidoreductases in the N terminus, rhodanese (sulfurtransferase) in the center, and uncharacterized conserved proteins in the C terminus. Unlike G. sulfurreducens, transcript levels for cytochrome genes did not increase in P. carbinolicus during growth on Fe(III). P. carbinolicus could use sulfate as the sole source of sulfur during fermentative growth, but required elemental sulfur or sulfide for growth on Fe(III). The increased expression of genes potentially involved in sulfur reduction, coupled with the requirement for sulfur or sulfide during growth on Fe(III), suggests that P. carbinolicus reduces Fe(III) via an indirect mechanism in which (i) elemental sulfur is reduced to sulfide and (ii) the sulfide reduces Fe(III) with the regeneration of elemental sulfur. This contrasts with the direct reduction of Fe(III) that has been proposed for Geobacter species.
机译:尽管Pelobacter菌种与Geobacter菌种密切相关,但最近的研究表明,Pelobacter carbinolicus可能通过不同的机理还原Fe(III),因为它缺少Geobacter sulfreducens还原Fe(III)所需的外表面c型细胞色素。对Fe(III)还原机理的研究表明,P。carbinolicus在可溶性和不溶性Fe(III)上均具有与其他还原Fe(III)的细菌一致的生长产量。 Fe(III)与发酵生长期间全基因组转录水平的比较表明,基因表达的最大表观变化是四个连续基因转录水平的增加。这些基因编码两个推定的周质硫氧还蛋白。推定的外膜转运蛋白;推定的NAD(FAD)依赖性脱氢酶,与N末端的二硫键氧化还原酶,Rhodanese(硫转移酶)位于中心,C末端的未保守蛋白质具有同源性。与还原硫小球藻不同,在Fe(III)上生长的过程中,碳假单胞菌中细胞色素基因的转录水平没有增加。在发酵生长过程中,碳假单胞菌可以使用硫酸盐作为硫的唯一来源,但在Fe(III)上生长需要元素硫或硫化物。潜在参与硫还原的基因表达的增加,加上在Fe(III)上生长过程中对硫或硫化物的需求,表明Caribolicus通过间接机制还原Fe(III),其中(i)元素硫被还原生成硫化物;(ii)硫化物随着元素硫的再生而还原Fe(III)。这与针对地球细菌物种提出的直接还原Fe(III)相反。

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