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Genes for two multicopper proteins required for Fe(III) oxide reduction in Geobacter sulfurreducens have different expression patterns both in the subsurface and on energy-harvesting electrodes

机译:Fe(III)氧化物所需的两种多蛋白蛋白的基因在地形杆菌中的氧化物降低具有不同的表达模式,在地下和能量收集电极上都具有不同的表达模式

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Previous studies have shown that Geobacter sulfurreducens requires the outer-membrane, multicopper protein OmpB for Fe(III) oxide reduction. A homologue of OmpB, designated OmpC, which is 36?% similar to OmpB, has been discovered in the G. sulfurreducens genome. Deletion of ompC inhibited reduction of insoluble, but not soluble Fe(III). Analysis of multiple Geobacter and Pelobacter genomes, as well as in situ Geobacter, indicated that genes encoding multicopper proteins are conserved in Geobacter species but are not found in Pelobacter species. Levels of ompB transcripts were similar in G. sulfurreducens at different growth rates in chemostats and during growth on a microbial fuel cell anode. In contrast, ompC transcript levels increased at higher growth rates in chemostats and with increasing current production in fuel cells. Constant levels of Geobacter ompB transcripts were detected in groundwater during a field experiment in which acetate was added to the subsurface to promote in situ uranium bioremediation. In contrast, ompC transcript levels increased during the rapid phase of growth of Geobacter species following addition of acetate to the groundwater and then rapidly declined. These results demonstrate that more than one multicopper protein is required for optimal Fe(III) oxide reduction in G. sulfurreducens and suggest that, in environmental studies, quantifying OmpB/OmpC-related genes could help alleviate the problem that Pelobacter genes may be inadvertently quantified via quantitative analysis of 16S rRNA genes. Furthermore, comparison of differential expression of ompB and ompC may provide insight into the in situ metabolic state of Geobacter species in environments of interest.
机译:以前的研究表明,地形膜硫化琥珀素需要外膜,用于Fe(III)氧化物的多膜蛋白OMPB。在G.硫化琥珀酰基因组中发现了IMPB的同源物,指定为类似于OMB的APP,其36?%。缺失OMPC抑制不溶性但不可溶性Fe(III)的降低。分析多个地形分子和椎弓杆菌及其原位地理杆菌表明编码多蛋白的基因在地形杆菌物种中保守,但在骨杆菌物种中没有发现。 EMB转录物的水平在Chemodators的不同生长速率下的G.硫化率和微生物燃料电池阳极的生长期间。相比之下,OMPC转录物水平在化学静管的较高生长率下增加,并随着燃料电池的增加。在地下水期间在地下水中检测到恒定水平的地质杆菌转录物,其中将醋酸酯加入到地下以促进原位铀生物化。相比之下,在加入地下水中加入乙酸盐后的大杆菌物种的快速阶段,OMPC转录物水平增加,然后在地下水中加快下降。这些结果表明,G.硫化琥珀酰的最佳Fe(III)氧化物还原需要多于一种多电囊蛋白质,并表明在环境研究中,量化OMPB / OMPC相关基因可能有助于缓解骨杆菌基因可能无意中量化的问题通过对16S rRNA基因的定量分析。此外,OMPB和OMPC的差异表达的比较可以在感兴趣的环境中提供对原地的地理杆菌种类的洞察力。

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