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Genome and physiology of a model Epsilonproteobacterium responsible for sulfide detoxification in marine oxygen depletion zones

机译:基因模型和生理模式的厄洛斯特变形杆菌负责海洋氧气消耗区中的硫化物解毒。

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摘要

Eutrophication and global climate change lead to expansion of hypoxia in the ocean, often accompanied by the production of hydrogen sulfide, which is toxic to higher organisms. Chemoautotrophic bacteria are thought to buffer against increased sulfide concentrations by oxidizing hydrogen sulfide before its diffusion to oxygenated surface waters. Model organisms from such environments have not been readily available, which has contributed to a poor understanding of these microbes. We present here a detailed study of “Sulfurimonas gotlandica” str. GD1, an Epsilonproteobacterium isolated from the Baltic Sea oxic-anoxic interface, where it plays a key role in nitrogen and sulfur cycling. Whole-genome analysis and laboratory experiments revealed a high metabolic flexibility, suggesting a considerable capacity for adaptation to variable redox conditions. S. gotlandica str. GD1 was shown to grow chemolithoautotrophically by coupling denitrification with oxidation of reduced sulfur compounds and dark CO2 fixation. Metabolic versatility was further suggested by the use of a range of different electron donors and acceptors and organic carbon sources. The number of genes involved in signal transduction and metabolic pathways exceeds those of other Epsilonproteobacteria. Oxygen tolerance and environmental-sensing systems combined with chemotactic responses enable this organism to thrive successfully in marine oxygen-depletion zones. We propose that S. gotlandica str. GD1 will serve as a model organism in investigations that will lead to a better understanding how members of the Epsilonproteobacteria are able to cope with water column anoxia and the role these microorganisms play in the detoxification of sulfidic waters.
机译:富营养化和全球气候变化导致海洋中的缺氧扩大,通常伴随着硫化氢的产生,而硫化氢对高级生物有毒。化学自养细菌被认为可以通过在硫化氢扩散到含氧地表水中之前氧化硫化氢来抵御增加的硫化物浓度。这种环境下的模型生物尚不容易获得,这导致人们对这些微生物的了解不足。我们在这里介绍“ Sulfurimonas gotlandica” str的详细研究。 GD1是一种从波罗的海的含氧-缺氧界面分离出的Epsilon变形杆菌,它在氮和硫的循环中起关键作用。全基因组分析和实验室实验显示出较高的代谢灵活性,表明其具有适应可变氧化还原条件的能力。哥斯达尼加海峡GD1通过反硝化与还原的硫化合物的氧化和深色CO2固定耦合,在化学上自养生长。通过使用各种不同的电子供体和受体以及有机碳源,进一步表明了代谢的多功能性。参与信号转导和代谢途径的基因数量超过了其他Epsilon变形杆菌的基因数量。耐氧性和环境感应系统与趋化反应相结合,使该生物体能够在海洋耗氧区成功繁殖。我们建议S. gotlandica str。 GD1将在研究中充当模型生物,从而可以更好地了解Epsilon变形细菌细菌的成员如何应对水柱缺氧以及这些微生物在硫化水排毒中的作用。

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