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Community Structure of Lithotrophically-Driven Hydrothermal Microbial Mats from the Mariana Arc and Back-Arc

机译:马里亚纳弧和反弧的岩石营养驱动的热液微生物垫的群落结构

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摘要

The Mariana region exhibits a rich array of hydrothermal venting conditions in a complex geological setting, which provides a natural laboratory to study the influence of local environmental conditions on microbial community structure as well as large-scale patterns in microbial biogeography. We used high-throughput amplicon sequencing of the bacterial small subunit (SSU) rRNA gene from 22 microbial mats collected from four hydrothermally active locations along the Mariana Arc and back-arc to explore the structure of lithotrophically-based microbial mat communities. The vent effluent was classified as iron- or sulfur-rich corresponding with two distinct community types, dominated by either Zetaproteobacteria or Epsilonproteobacteria, respectively. The Zetaproteobacterial-based communities had the highest richness and diversity, which supports the hypothesis that Zetaproteobacteria function as ecosystem engineers creating a physical habitat within a chemical environment promoting enhanced microbial diversity. Gammaproteobacteria were also high in abundance within the iron-dominated mats and some likely contribute to primary production. In addition, we also compare sampling scale, showing that bulk sampling of microbial mats yields higher diversity than micro-scale sampling. We present a comprehensive analysis and offer new insights into the community structure and diversity of lithotrophically-driven microbial mats from a hydrothermal region associated with high microbial biodiversity. Our study indicates an important functional role of for the Zetaproteobacteria altering the mat habitat and enhancing community interactions and complexity.
机译:马里亚纳地区在复杂的地质环境中表现出丰富的热液排放条件,为研究当地环境条件对微生物群落结构以及微生物生物地理学中的大规模格局提供了一个自然实验室。我们使用高通量扩增子序列对22个微生物垫上的细菌小亚基(SSU)rRNA基因进行了测序,这些微生物垫是从沿Mariana弧和后弧的四个热液活动位置收集的,以探索基于岩石形态的微生物垫群落的结构。排泄物的分类为富铁或硫富集,分别对应于两种不同的群落类型,分别以Zetaproteobacteria或Epsilonproteobacteria为主。基于Zetaproteobacterial的社区具有最高的丰富度和多样性,这支持以下假设:Zetaproteobacteria可以充当生态系统工程师,在化学环境中创建物理栖息地,从而促进微生物多样性的增加。在铁为主的垫子中,γ-变形杆菌也很多,有些可能有助于初级生产。此外,我们还比较了抽样规模,表明微生物垫的批量抽样比微观规模抽样产生的多样性更高。我们提出了一项全面的分析,并为来自与高微生物多样性相关的热液区的以岩石形态驱动的微生物垫的群落结构和多样性提供了新见解。我们的研究表明,Zetaproteobacteria的重要功能是改变垫子的栖息地,增强社区的互动性和复杂性。

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