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The Genome Sequence of the Metal-Mobilizing, Extremely Thermoacidophilic Archaeon Metallosphaera sedula Provides Insights into Bioleaching-Associated Metabolism▿ †

机译:动员金属的,极度嗜热古细菌Metalllosphaera sedula的基因组序列提供了生物浸出相关代谢的见解▿†

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摘要

Despite their taxonomic description, not all members of the order Sulfolobales are capable of oxidizing reduced sulfur species, which, in addition to iron oxidation, is a desirable trait of biomining microorganisms. However, the complete genome sequence of the extremely thermoacidophilic archaeon Metallosphaera sedula DSM 5348 (2.2 Mb, ∼2,300 open reading frames [ORFs]) provides insights into biologically catalyzed metal sulfide oxidation. Comparative genomics was used to identify pathways and proteins involved (directly or indirectly) with bioleaching. As expected, the M. sedula genome contains genes related to autotrophic carbon fixation, metal tolerance, and adhesion. Also, terminal oxidase cluster organization indicates the presence of hybrid quinol-cytochrome oxidase complexes. Comparisons with the mesophilic biomining bacterium Acidithiobacillus ferrooxidans ATCC 23270 indicate that the M. sedula genome encodes at least one putative rusticyanin, involved in iron oxidation, and a putative tetrathionate hydrolase, implicated in sulfur oxidation. The fox gene cluster, involved in iron oxidation in the thermoacidophilic archaeon Sulfolobus metallicus, was also identified. These iron- and sulfur-oxidizing components are missing from genomes of nonleaching members of the Sulfolobales, such as Sulfolobus solfataricus P2 and Sulfolobus acidocaldarius DSM 639. Whole-genome transcriptional response analysis showed that 88 ORFs were up-regulated twofold or more in M. sedula upon addition of ferrous sulfate to yeast extract-based medium; these included genes for components of terminal oxidase clusters predicted to be involved with iron oxidation, as well as genes predicted to be involved with sulfur metabolism. Many hypothetical proteins were also differentially transcribed, indicating that aspects of the iron and sulfur metabolism of M. sedula remain to be identified and characterized.
机译:尽管有分类学上的描述,但并不是所有的硫磺草目成员都能够氧化还原的硫物质,除铁氧化外,这是生物开采微生物的理想特性。但是,极热嗜酸古生菌小球藻DSM 5348的完整基因组序列(2.2 Mb,〜2,300个开放阅读框[ORF])提供了对生物催化的金属硫化物氧化的认识。比较基因组学用于鉴定与生物浸提有关的途径和蛋白质(直接或间接)。如预期的那样,景天支原体基因组包含与自养碳固定,金属耐受性和粘附相关的基因。同样,末端氧化酶簇的组织表明存在混合的喹诺酚-细胞色素氧化酶复合物。与嗜温性生物采矿细菌铁氧化酸硫硫杆菌ATCC 23270的比较表明,景天支原体基因组编码至少一种参与铁氧化的推定的土气花青素和一种参与硫氧化的推定的四硫酸酯水解酶。还鉴定了与嗜热古细菌Sulfolobus metalus中的铁氧化有关的fox基因簇。这些硫和硫的氧化成分从Sulfolobales的非浸提成员(如Sulfolobus solfataricus P2和Sulfolobus acidocaldarius DSM 639)的基因组中缺失。全基因组转录反应分析表明,88个ORF在M中被上调了两倍或更多。将硫酸亚铁添加到基于酵母提取物的培养基中后进行复盖;这些基因包括预测与铁氧化有关的末端氧化酶簇成分的基因,以及与硫代谢有关的基因。许多假设的蛋白质也被差异转录,表明小叶景天的铁和硫代谢方面仍待鉴定和表征。

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