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两种差异显著湖泊沉积物中微生物氮转化潜能具有空间结构特征但季节稳定。

Microbial Nitrogen Transformation Potential in Sediments of Two Contrasting Lakes Is Spatially Structured but Seasonally Stable.

机构信息

Department of Surface Waters-Research and Management, Eawag, Swiss Federal Institute for Aquatic Science and Technology, Kastanienbaum, Switzerland.

Institute of Biogeochemistry and Pollutant Dynamics (IBP), ETH Zurich, Zurich, Switzerland.

出版信息

mSphere. 2022 Feb 23;7(1):e0101321. doi: 10.1128/msphere.01013-21. Epub 2022 Feb 2.

Abstract

The nitrogen (N) cycle is of global importance, as N is an essential element and a limiting nutrient in terrestrial and aquatic ecosystems. Excessive anthropogenic N fertilizer usage threatens sensitive downstream aquatic ecosystems. Although freshwater lake sediments remove N through various microbially mediated processes, few studies have investigated the microbial communities involved. In an integrated biogeochemical and microbiological study on a eutrophic and oligotrophic lake, we estimated N removal rates from pore water concentration gradients in sediments. Simultaneously, the abundance of different microbial N transformation genes was investigated using metagenomics on a seasonal and spatial scale. We observed that contrasting nutrient concentrations in sediments were associated with distinct microbial community compositions and significant differences in abundances of various N transformation genes. For both characteristics, we observed a more pronounced spatial than seasonal variability within each lake. The eutrophic Lake Baldegg showed a higher denitrification potential with higher gene (NO reductase) abundances and higher : (nitrite reductase) ratios, indicating a greater capacity for complete denitrification. Correspondingly, this lake had a higher N removal efficiency. The oligotrophic Lake Sarnen, in contrast, had a higher potential for nitrification. Specifically, it harbored a high abundance of , including some with the potential for comammox. Our results demonstrate that knowledge of the genomic N transformation potential is important for interpreting N process rates and understanding how the lacustrine sedimentary N cycle responds to variations in trophic conditions. Anthropogenic nitrogen (N) inputs can lead to eutrophication in surface waters, especially in N-limited coastal ecosystems. Lakes effectively remove reactive N by transforming it to N through microbial denitrification or anammox. The rates and distributions of these microbial processes are affected by factors such as the amount and quality of settling organic material and nitrate concentrations. However, the microbial communities mediating these N transformation processes in freshwater lake sediments remain largely unknown. We provide the first seasonally and spatially resolved metagenomic analysis of the N cycle in sediments of two lakes with different trophic states. We show that lakes with different trophic states select for distinct communities of N-cycling microorganisms with contrasting functional potentials for N transformation.

摘要

氮(N)循环具有全球重要性,因为 N 是陆地和水生生态系统中的一种必需元素和限制营养物质。过度人为施用氮肥会威胁到敏感的下游水生生态系统。尽管淡水湖底泥通过各种微生物介导的过程去除 N,但很少有研究调查涉及的微生物群落。在一项对富营养化和贫营养化湖泊的综合生物地球化学和微生物学研究中,我们根据沉积物中孔隙水浓度梯度估计了 N 的去除速率。同时,我们还在季节性和空间尺度上使用宏基因组学研究了不同微生物 N 转化基因的丰度。我们观察到,沉积物中不同的养分浓度与截然不同的微生物群落组成有关,以及各种 N 转化基因的丰度存在显著差异。对于这两个特征,我们在每个湖泊内都观察到了比季节性变化更明显的空间变化。富营养化的巴尔代格湖(Baldegg)具有更高的反硝化潜力,具有更高的基因(NO 还原酶)丰度和更高的:(亚硝酸盐还原酶)比值,表明其完全反硝化的能力更大。相应地,这个湖的 N 去除效率更高。相比之下,贫营养化的萨嫩湖(Sarnen)具有更高的硝化潜力。具体来说,它含有大量的 ,包括一些具有 comammox 潜力的 。我们的结果表明,了解基因组 N 转化潜力对于解释 N 过程速率以及理解湖泊沉积物 N 循环如何响应营养条件的变化非常重要。人为氮(N)输入会导致地表水富营养化,尤其是在 N 限制的沿海生态系统中。湖泊通过微生物反硝化或厌氧氨氧化将其转化为 N 来有效去除活性 N。这些微生物过程的速率和分布受沉降有机物质的数量和质量以及硝酸盐浓度等因素的影响。然而,在淡水湖底泥中介导这些 N 转化过程的微生物群落仍知之甚少。我们提供了两个具有不同营养状态的湖泊沉积物中 N 循环的首次季节性和空间分辨率的宏基因组分析。我们表明,具有不同营养状态的湖泊选择了具有截然不同的 N 循环微生物群落,这些微生物群落具有不同的 N 转化功能潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c2fc/8809388/9415dc0fc5a1/msphere.01013-21-f001.jpg

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