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Energy Landscapes in Hydrothermal Chimneys Shape Distributions of Primary Producers

机译:初级生产者热液烟囱形状分布中的能量景观

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摘要

Hydrothermal systems are excellent natural laboratories for the study of how chemical energy landscapes shape microbial communities. Yet, only a few attempts have been made to quantify relationships between energy availability and microbial community structure in these systems. Here, we have investigated how microbial communities and chemical energy availabilities vary along cross-sections of two hydrothermal chimneys from the Soria Moria Vent Field and the Bruse Vent Field. Both vent fields are located on the Arctic Mid-Ocean Ridge, north of the Jan Mayen Island and the investigated chimneys were venting fluids with markedly different H2S:CH4 ratios. Energy landscapes were inferred from a stepwise in silico mixing of hydrothermal fluids (HFs) with seawater, where Gibbs energies of relevant redox-reactions were calculated at each step. These calculations formed the basis for simulations of relative abundances of primary producers in microbial communities. The simulations were compared with an analysis of 24 samples from chimney wall transects by sequencing of 16S rRNA gene amplicons using 454 sequencing. Patterns in relative abundances of sulfide oxidizing Epsilonproteobacteria and methane oxidizing Methylococcales and ANME-1, were consistent with simulations. However, even though H2 was present in HFs from both chimneys, the observed abundances of putative hydrogen oxidizing anaerobic sulfate reducers (Archaeoglobales) and methanogens (Methanococcales) in the inner parts of the Soria Moria Chimney were considerably higher than predicted by simulations. This indicates biogenic production of H2 in the chimney wall by fermentation, and suggests that biological activity inside the chimneys may modulate energy landscapes significantly. Our results are consistent with the notion that energy landscapes largely shape the distribution of primary producers in hydrothermal systems. Our study demonstrates how a combination of modeling and field observations can be useful in deciphering connections between chemical energy landscapes and metabolic networks within microbial communities.
机译:水热系统是研究化学能如何塑造微生物群落的出色自然实验室。然而,在这些系统中,仅进行了很少的尝试来量化能量可用性和微生物群落结构之间的关系。在这里,我们研究了沿索里亚莫里亚通风田和布鲁斯通风田的两个热液烟囱的横截面,微生物群落和化学能的利用率如何变化。这两个排放场均位于Jan Mayen岛以北的北极中洋脊上,所研究的烟囱正在排放H2S:CH4比率明显不同的流体。通过将热液(HF)与海水逐步进行计算机混合,可以推断出能源格局,并在每一步中计算出相关氧化还原反应的吉布斯能量。这些计算为模拟微生物群落中初级生产者的相对丰度奠定了基础。通过使用454测序对16S rRNA基因扩增子进行测序,将模拟与分析烟囱壁横断面的24个样品进行了比较。硫化物氧化埃弗隆蛋白菌和甲烷氧化甲基球菌和ANME-1相对丰度的模式与模拟一致。但是,即使两个烟囱的HF中都存在H2,但在Soria Moria烟囱内部观察到的推定的氢氧化厌氧硫酸盐还原剂(Archaeoglobales)和产甲烷菌(Methanococcales)的丰度也大大高于模拟预测的值。这表明通过发酵在烟囱壁中产生了H2,这表明烟囱内部的生物活性可能会显着调节能量分布。我们的结果与以下观点一致:能源格局在很大程度上影响了热液系统中初级生产者的分布。我们的研究表明,建模和现场观察相结合如何在破译微生物群落中化学能态和代谢网络之间的联系时很有用。

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