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大型公共水族馆中通过硫氧化实现氮损失的广泛系统发育多样性。

Broad Phylogenetic Diversity Associated with Nitrogen Loss through Sulfur Oxidation in a Large Public Marine Aquarium.

机构信息

School of Biological Sciences, Georgia Institute of Technology, Atlanta, Georgia, USA

School of Biological Sciences, Georgia Institute of Technology, Atlanta, Georgia, USA.

出版信息

Appl Environ Microbiol. 2018 Oct 1;84(20). doi: 10.1128/AEM.01250-18. Print 2018 Oct 15.

Abstract

Denitrification by sulfur-oxidizing bacteria is an effective nitrate removal strategy in engineered aquatic systems. However, the community taxonomic and metabolic diversity of sulfur-driven denitrification (SDN) systems, as well as the relationship between nitrate removal and SDN community structure, remains underexplored. This is particularly true for SDN reactors applied to marine aquaria, despite the increasing use of this technology to supplement filtration. We applied 16S rRNA gene, metagenomic, and metatranscriptomic analyses to explore the microbial basis of SDN reactors operating on Georgia Aquarium's Ocean Voyager, the largest indoor closed-system seawater exhibit in the United States. The exhibit's two SDN systems vary in water retention time and nitrate removal efficiency. The systems also support significantly different microbial communities. These communities contain canonical SDN bacteria, including a strain related to that dominates the system with the higher water retention time and nitrate removal but is effectively absent from the other system. Both systems contain a wide diversity of other microbes whose metagenome-assembled genomes contain genes of SDN metabolism. These include hundreds of strains of the epsilonproteobacterium , as well as gammaproteobacterial sulfur oxidizers of the and , and a relative of with complete denitrification potential. The SDN genes are transcribed and the taxonomic richness of the transcript pool varies markedly among the enzymatic steps, with some steps dominated by transcripts from noncanonical SDN taxa. These results indicate complex and variable SDN communities that may involve chemical dependencies among taxa as well as the potential for altering community structure to optimize nitrate removal. Engineered aquatic systems such as aquaria and aquaculture facilities have large societal value. Ensuring the health of animals in these systems requires understanding how microorganisms contribute to chemical cycling and waste removal. Focusing on the largest seawater aquarium in the United States, we explore the microbial communities in specialized reactors designed to remove excess nitrogen through the metabolic activity of sulfur-consuming microbes. We show that the diversity of microbes in these reactors is both high and highly variable, with distinct community types associated with significant differences in nitrogen removal rate. We also show that the genes encoding the metabolic steps of nitrogen removal are distributed broadly throughout community members, suggesting that the chemical transformations in this system are likely a result of microbes relying on other microbes. These results provide a framework for future studies exploring the contributions of different community members, both in waste removal and in structuring microbial biodiversity.

摘要

硫氧化细菌的反硝化作用是工程化水生系统中去除硝酸盐的有效策略。然而,硫驱动反硝化(SDN)系统的群落分类学和代谢多样性,以及硝酸盐去除与 SDN 群落结构之间的关系,仍未得到充分探索。对于应用于海洋水族馆的 SDN 反应器尤其如此,尽管这项技术越来越多地用于补充过滤。我们应用 16S rRNA 基因、宏基因组和宏转录组分析来探索在美国最大的室内闭式海水展示馆佐治亚水族馆的海洋远航号(Ocean Voyager)上运行的 SDN 反应器的微生物基础。该展览有两个 SDN 系统,其水保留时间和硝酸盐去除效率不同。这些系统还支持着明显不同的微生物群落。这些群落包含了典型的 SDN 细菌,包括一种与主导具有更高水保留时间和硝酸盐去除效率的系统的 相关的菌株,但实际上不存在于另一个系统中。两个系统都包含了广泛的其他微生物,它们的宏基因组组装基因组包含 SDN 代谢基因。其中包括数百株 的 ε 变形菌,以及 和 的 γ 变形菌硫氧化菌,以及一种具有完整反硝化潜力的 的近亲。SDN 基因被转录,酶促步骤中转录物的分类丰富度差异显著,一些步骤主要由非典型 SDN 分类群的转录物组成。这些结果表明存在复杂且多变的 SDN 群落,这些群落可能涉及分类群之间的化学依赖性,以及优化硝酸盐去除的群落结构改变的潜力。像水族馆和水产养殖设施这样的工程化水生系统具有巨大的社会价值。确保这些系统中的动物健康需要了解微生物如何促进化学循环和废物去除。我们以美国最大的海水水族馆为重点,探索了专门设计用于通过消耗硫的微生物的代谢活性去除多余氮的特殊反应器中的微生物群落。我们表明,这些反应器中的微生物多样性既高又高度可变,与氮去除率显著差异相关的独特群落类型。我们还表明,编码氮去除代谢步骤的基因广泛分布在群落成员中,这表明该系统中的化学转化可能是由于微生物依赖其他微生物的结果。这些结果为未来探索不同群落成员在废物去除和微生物生物多样性结构中的贡献提供了一个框架。

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