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Oxidation of Molecular Hydrogen by a Chemolithoautotrophic Beggiatoa Strain

机译:化学自养自养贝格托亚菌株对分子氢的氧化作用

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A chemolithoautotrophic strain of the family Beggiatoaceae , Beggiatoa sp. strain 35Flor, was found to oxidize molecular hydrogen when grown in a medium with diffusional gradients of oxygen, sulfide, and hydrogen. Microsensor profiles and rate measurements suggested that the strain oxidized hydrogen aerobically when oxygen was available, while hydrogen consumption under anoxic conditions was presumably driven by sulfur respiration. Beggiatoa sp. 35Flor reached significantly higher biomass in hydrogen-supplemented oxygen-sulfide gradient media, but hydrogen did not support growth of the strain in the absence of reduced sulfur compounds. Nevertheless, hydrogen oxidation can provide Beggiatoa sp. 35Flor with energy for maintenance and assimilatory purposes and may support the disposal of internally stored sulfur to prevent physical damage resulting from excessive sulfur accumulation. Our knowledge about the exposure of natural populations of Beggiatoaceae to hydrogen is very limited, but significant amounts of hydrogen could be provided by nitrogen fixation, fermentation, and geochemical processes in several of their typical habitats such as photosynthetic microbial mats and submarine sites of hydrothermal fluid flow.IMPORTANCE Reduced sulfur compounds are certainly the main electron donors for chemolithoautotrophic Beggiatoaceae , but the traditional focus on this topic has left other possible inorganic electron donors largely unexplored. In this paper, we provide evidence that hydrogen oxidation has the potential to strengthen the ecophysiological plasticity of Beggiatoaceae in several ways. Moreover, we show that hydrogen oxidation by members of this family can significantly influence biogeochemical gradients and therefore should be considered in environmental studies.
机译:Beggiatoaceae(Beggiatoa sp。)属的化石自养菌株。发现菌株35Flor在含有氧气,硫化物和氢气的扩散梯度的培养基中生长时会氧化分子氢。微传感器的概况和速率测量结果表明,当有氧气存在时,该菌株可有氧地氧化氢,而在缺氧条件下的氢消耗可能是由硫的呼吸作用驱动的。 Beggiatoa sp。 35Flor在充氢的氧硫化物梯度介质中达到了更高的生物量,但是在没有还原的硫化合物的情况下,氢不能支持菌株的生长。但是,氢氧化可以提供Beggiatoa sp。 35Flor用能量进行维护和吸收,并可以支持内部存储的硫的处置,以防止因硫的过多积累而造成的物理损坏。我们对秋茄科自然种群暴露于氢气的知识非常有限,但是在固氮,发酵和一些典型生境中的地球化学过程(如光合微生物垫和热液海底场所)中,可以提供大量的氢气。重要信息还原性硫化合物无疑是化石自养植物秋茄科的主要电子供体,但是传统上对该主题的关注使其他可能的无机电子供体在很大程度上尚未得到开发。在本文中,我们提供了证据,证明氢氧化可以以多种方式增强秋茄科的生态生理可塑性。此外,我们表明该家族成员的氢氧化作用可显着影响生物地球化学梯度,因此应在环境研究中予以考虑。

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