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本文引用的文献

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2
Fate of glacier surface snow-originating bacteria in the glacier-fed hydrologic continuums.冰川表面源自积雪的细菌在冰川补给水文连续体中的命运。
Environ Microbiol. 2021 Nov;23(11):6450-6462. doi: 10.1111/1462-2920.15788. Epub 2021 Oct 4.
3
Microdiversity characterizes prevalent phylogenetic clades in the glacier-fed stream microbiome.微多样性是冰川溪流微生物组中流行的系统发育进化枝的特征。
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Co-existing water and sediment bacteria are driven by contrasting environmental factors across glacier-fed aquatic systems.共存的水体和沉积物细菌受冰川补给的水生系统中截然不同的环境因素驱动。
Water Res. 2021 Jun 15;198:117139. doi: 10.1016/j.watres.2021.117139. Epub 2021 Apr 11.
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Alpine headwaters emerging from glaciers and rock glaciers host different bacterial communities: Ecological implications for the future.高山源头从冰川和岩冰川中涌出,拥有不同的细菌群落:对未来的生态影响。
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Shifts in reclamation management strategies shape the role of exopolysaccharide and lipopolysaccharide-producing bacteria during soil formation.复垦管理策略的转变塑造了产胞外多糖和脂多糖细菌在土壤形成过程中的作用。
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与溪流水体相比,从斯堪的纳维亚到喜马拉雅山的冰川溪流中的底栖生物膜中存在独特的细菌群落。

Benthic Biofilms in Glacier-Fed Streams from Scandinavia to the Himalayas Host Distinct Bacterial Communities Compared with the Streamwater.

机构信息

River Ecosystems Laboratory, Alpine and Polar Environmental Research Center, Ecole Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.

Systems Ecology group, Luxembourg Centre for Systems Biomedicine, University of Luxembourg, Esch-sur-Alzette, Luxembourg.

出版信息

Appl Environ Microbiol. 2022 Jun 28;88(12):e0042122. doi: 10.1128/aem.00421-22. Epub 2022 Jun 8.

DOI:10.1128/aem.00421-22
PMID:35674429
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9238418/
Abstract

Microbial life in glacier-fed streams (GFSs) is dominated by benthic biofilms which fulfill critical ecosystem processes. However, it remains unclear how the bacterial communities of these biofilms assemble in stream ecosystems characterized by rapid turnover of benthic habitats and high suspended sediment loads. Using16S rRNA gene amplicon sequence data collected from 54 GFSs across the Himalayas, European Alps, and Scandinavian Mountains, we found that benthic biofilms harbor bacterial communities that are distinct from the bacterial assemblages suspended in the streamwater. Our data showed a decrease in species richness in the benthic biofilms compared to the bacterial cells putatively free-living in the water. The benthic biofilms also differed from the suspended water fractions in terms of community composition. Differential abundance analyses highlighted bacterial families that were specific to the benthic biofilms and the suspended assemblages. Notably, source-sink models suggested that the benthic biofilm communities are not simply a subset of the suspended assemblages. Rather, we found evidence that deterministic processes (e.g., species sorting) shape the benthic biofilm communities. This is unexpected given the high vertical mixing of water and contained bacterial cells in GFSs and further highlights the benthic biofilm mode of life as one that is determined through niche-related processes. Our findings therefore reveal a "native" benthic biofilm community in an ecosystem that is currently threatened by climate-induced glacier shrinkage. Benthic biofilms represent the dominant form of life in glacier-fed streams. However, it remains unclear how bacterial communities within these biofilms assemble. Our findings from glacier-fed streams from three major mountain ranges across the Himalayas, the European Alps and the Scandinavian Mountains reveal a bacterial community associated with benthic biofilms that is distinct from the assemblage in the overlying streamwater. Our analyses suggest that selection is the underlying process to this differentiation. This is unexpected given that bacterial cells that are freely living or attached to the abundant sediment particles suspended in the water continuously mix with the benthic biofilms. The latter colonize loose sediments that are subject to high turnover owing to the forces of the water flow. Our research unravels the existence of a microbiome specific to benthic biofilms in glacier-fed streams, now under major threats due to global warming.

摘要

在冰川补给溪流(GFS)中,微生物生命主要由底栖生物膜主导,这些生物膜履行着关键的生态系统过程。然而,目前尚不清楚这些生物膜中的细菌群落是如何在以底栖生境快速更替和高悬浮泥沙负荷为特征的溪流生态系统中组装的。我们使用从喜马拉雅山脉、欧洲阿尔卑斯山脉和斯堪的纳维亚山脉的 54 个 GFS 中收集的 16S rRNA 基因扩增子序列数据,发现底栖生物膜中的细菌群落与悬浮在溪流水中的细菌组合明显不同。与推测在水中自由生活的细菌细胞相比,我们的数据显示底栖生物膜中的物种丰富度降低。底栖生物膜在群落组成方面也与悬浮水部分不同。差异丰度分析突出了特定于底栖生物膜和悬浮组合的细菌科。值得注意的是,源-汇模型表明,底栖生物膜群落不仅仅是悬浮组合的一个子集。相反,我们发现有证据表明,确定性过程(例如,物种分选)塑造了底栖生物膜群落。考虑到 GFS 中水流的强烈垂直混合和包含的细菌细胞,这是出乎意料的,进一步突出了底栖生物膜的生活方式是通过与小生境相关的过程来决定的。因此,我们的研究结果揭示了一个“本地”的底栖生物膜群落,该群落目前正受到气候变化导致的冰川退缩的威胁。底栖生物膜是冰川补给溪流中的主要生命形式。然而,目前尚不清楚这些生物膜内的细菌群落是如何组装的。我们从喜马拉雅山脉、欧洲阿尔卑斯山脉和斯堪的纳维亚山脉的三个主要山脉的冰川补给溪流中获得的发现揭示了与覆盖其上的溪流水中的组合不同的与底栖生物膜相关的细菌群落。我们的分析表明,选择是这种分化的基础过程。考虑到自由生活或附着在悬浮在水中的大量泥沙颗粒上的细菌细胞不断与底栖生物膜混合,这是出乎意料的。后者定植于松散的沉积物中,由于水流的力量,这些沉积物会发生高周转率。我们的研究揭示了冰川补给溪流中底栖生物膜特有的微生物组的存在,由于全球变暖,这些微生物组目前正受到严重威胁。