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Metagenomic insights into strategies of aerobic and anaerobic carbon and nitrogen transformation in boreal lakes

机译:对北方湖泊中好氧和厌氧碳氮转化策略的元基因组学见解

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摘要

Thousands of net-heterotrophic and strongly stratifying lakes dominate the boreal landscape. Besides their central role as emitters of greenhouse gases, we have only recently begun to understand the microbial systems driving the metabolic processes and elemental cycles in these lakes. Using shotgun metagenomics, we show that the functional potential differs among lake types, with humic lakes being particularly enriched in carbon degradation genes. Most of the metabolic pathways exhibit oxygen- and temperature-dependent stratification over depth, coinciding with shifts in bacterial community composition, implying that stratification is a major factor controlling lake metabolism. In the bottom waters, rare and poorly characterized taxa, such as epsilon-Proteobacteria, but also autotrophs, such as photolithotrophic Chlorobia were abundant. These oxygen-depleted layers exhibited high genetic potential for mineralization, but also for fixation of carbon and nitrogen, and genetic markers for both methane production and oxidation were present. Our study provides a first glimpse of the genetic versatility of freshwater anoxic zones, and demonstrates the potential for complete turnover of carbon compounds within the water column.
机译:数以千计的净异养和强烈分层的湖泊主导了北方的景观。除了它们作为温室气体排放者的中心作用之外,我们直到最近才开始了解驱动这些湖泊中代谢过程和元素循环的微生物系统。使用shot弹枪宏基因组学,我们显示出不同类型湖泊的功能潜力不同,腐殖质湖泊尤其富含碳降解基因。大多数代谢途径在深度上都表现出取决于氧气和温度的分层,这与细菌群落组成的变化相吻合,这意味着分层是控制湖泊代谢的主要因素。在海底,稀有和特征较差的分类单元,如ε-变形细菌,但也有自养生物,如光养绿藻。这些贫氧层显示出很高的成矿潜力,但也具有固定碳和氮的遗传潜力,并且存在甲烷生成和氧化的遗传标记。我们的研究提供了淡水缺氧区的遗传通用性的初步了解,并证明了水柱内碳化合物完全转换的潜力。

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