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首页> 外文期刊>Microbial Ecology: An International Journal >Pioneer Microbial Communities of the FimmvorA degrees uhals Lava Flow, Eyjafjallajokull, Iceland
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Pioneer Microbial Communities of the FimmvorA degrees uhals Lava Flow, Eyjafjallajokull, Iceland

机译:FimmvorA度的先锋微生物群落可从冰岛Eyjafjallajokull的熔岩流中吸获

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摘要

Little is understood regarding the phylogeny and metabolic capabilities of the earliest colonists of volcanic rocks, yet these data are essential for understanding how life becomes established in and interacts with the planetary crust, ultimately contributing to critical zone processes and soil formation. Here, we report the use of molecular and culture-dependent methods to determine the composition of pioneer microbial communities colonising the basaltic FimmvorA degrees uhals lava flow at Eyjafjallajokull, Iceland, formed in 2010. Our data show that 3 to 5 months post eruption, the lava was colonised by a low-diversity microbial community dominated by Betaproteobacteria, primarily taxa related to non-phototrophic diazotrophs such as Herbaspirillum spp. and chemolithotrophs such as Thiobacillus. Although successfully cultured following enrichment, phototrophs were not abundant members of the FimmvorA degrees uhals communities, as revealed by molecular analysis, and phototrophy is therefore not likely to be a dominant biogeochemical process in these early successional basalt communities. These results contrast with older Icelandic lava of comparable mineralogy, in which phototrophs comprised a significant fraction of microbial communities, and the non-phototrophic community fractions were dominated by Acidobacteria and Actinobacteria.
机译:对于最早的火山岩殖民者的系统发育和新陈代谢能力了解甚少,但是这些数据对于了解生命如何在行星地壳中建立并与之相互作用,最终有助于关键地带过程和土壤形成至关重要。在这里,我们报告使用分子和文化相关的方法来确定定居于2010年在冰岛Eyjafjallajokull的玄武岩FimmvorA度uhals熔岩流形成的先驱微生物群落的组成。我们的数据显示,喷发后3至5个月,熔岩被低聚微生物群落定居,该群落以Beta变形细菌为主导,主要是与非光养重氮菌(如Herbaspirillum spp)有关的类群。和化营养菌如硫杆菌。尽管通过富集成功地进行了培养,但如分子分析所显示的,光化养分并不是FimmvorA度的重要组成部分,因此,在这些早期的连续玄武岩群落中,光养化不太可能是主要的生物地球化学过程。这些结果与具有可比矿物学特征的较古老的冰岛熔岩形成对比,在该熔岩中,光养菌占微生物群落的很大一部分,而非光养菌群落的大部分由酸性细菌和放线菌组成。

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